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10.1253/circj.cj-15-0857
10.1253/circj.cj-15-0857
“The Third Man” in Heart Failure – Heart Failure With Reduce Ejection Fraction Evolved From Heart Failure With Preserved Ejection Fraction –
2,015
2015
journal-article
Japanese Circulation Society
Circulation Journal
79
10
2108-2109
1346-9843, 1347-4820
null
Kazuhiro Yamamoto
1
Division of Cardiovascular Medicine, Endocrinology and Metabolism, Department of Molecular Medicine and Therapeutics, Faculty of Medicine, Tottori University
1
14
true
null
null
null
https://doi.org/10.1253/circj.cj-15-0857
null
null
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1253/circj.cj-15-0016
10.1253/circj.cj-15-0016
Statins Beneficial for Heart Failure With Preserved Ejection Fraction But Not Heart Failure With Reduced Ejection Fraction?
2,015
2015
journal-article
Japanese Circulation Society
Circulation Journal
79
3
508-509
1346-9843, 1347-4820
null
Nobuyuki Ohte, William C. Little
2
Department of Cardio-Renal Medicine and Hypertension, Nagoya City University Graduate School of Medical Sciences
7
13
true
null
null
null
https://doi.org/10.1253/circj.cj-15-0016
null
null
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1161/circ.144.suppl_1.13703
10.1161/circ.144.suppl_1.13703
Abstract 13703: Outpatient Cardiac Rehabilitation Reduces Heart Failure Re-Hospitalization in Patient With Heart Failure With Reduced Ejection Fraction When Compared to Patients With Heart Failure With Preserved Ejection Fraction
2,021
2021-11-16
journal-article
Ovid Technologies (Wolters Kluwer Health)
Circulation
144
Suppl_1
null
0009-7322, 1524-4539
null
KELECHI EMMANUEL, Halimat Lawal, Guillermo Valenzuela, Yijin Wert
4
Internal Medicine, UPMC Harrisburg, Harrisburg, PA
0
0
false
null
null
null
https://doi.org/10.1161/circ.144.suppl_1.13703
null
Introduction: Cardiac rehabilitation has been increasingly recognized as an integral part in the management of patients with congestive heart failure. It has been shown to improve the quality of life in this patient population. However, It is unknown how much cardiac rehabilitation reduces heart failure hospitalization...
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1161/cir.151.suppl_1.p1084
10.1161/cir.151.suppl_1.p1084
Abstract P1084: Association of Body Composition and Incident Heart Failure and Heart Failure with Preserved Ejection Fraction and Heart Failure with Reduced Ejection Fraction in postmenopausal women
2,025
2025-03-11
journal-article
Ovid Technologies (Wolters Kluwer Health)
Circulation
151
Suppl_1
null
0009-7322, 1524-4539
null
Charles Eaton, mir mad madani, Connor Miller, Andrew Odegaard, Michael LaMonte
5
Charles Eaton, Plymouth, Massachusetts, United States
0
0
false
null
null
null
https://doi.org/10.1161/cir.151.suppl_1.p1084
null
Background: As the US population ages, Heart Failure (HF) is reaching epidemic proportions, with heart failure with preserved ejection fraction (HFpEF) placing a particular burden on elderly women. While the association of obesity with the risk of heart failure is well established, the role of visceral adiposity and ot...
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1161/circheartfailure.112.972638
10.1161/circheartfailure.112.972638
Letter by Nunez et al Regarding Article, “Longitudinal Changes in Ejection Fraction in Heart Failure Patients With Preserved and Reduced Ejection Fraction”
2,013
2013-03
journal-article
Ovid Technologies (Wolters Kluwer Health)
Circulation: Heart Failure
6
2
null
1941-3289, 1941-3297
null
Eduardo Nunez, Juan Sanchis, Julio Nunez
3
Servicio de CardiologíaHospital Clínico Universitario, INCLIVAUniversitat de ValenciaValencia, Spain
1
5
true
null
null
null
https://doi.org/10.1161/circheartfailure.112.972638
null
null
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1161/circheartfailure.115.002962
10.1161/circheartfailure.115.002962
Changes in Left Ventricular Ejection Fraction Predict Survival and Hospitalization in Heart Failure With Reduced Ejection Fraction
2,016
2016-10
journal-article
Ovid Technologies (Wolters Kluwer Health)
Circulation: Heart Failure
9
10
null
1941-3289, 1941-3297
null
Khadijah Breathett, Larry A. Allen, James Udelson, Gordon Davis, Michael Bristow
5
From the Division of Cardiology, University of Colorado, Aurora (K.B., L.A.A., M.B.); Division of Cardiology, Tufts Medical Center, Boston, MA (J.U.); and ARCA Biopharma, Westminster, CO (G.D., M.B.).
111
44
true
null
null
null
https://doi.org/10.1161/circheartfailure.115.002962
null
Background— Left ventricular remodeling, as commonly measured by left ventricular ejection fraction (LVEF), is associated with clinical outcomes. Although change in LVEF over time should reflect response to therapy and clinical course, serial measurement of LVEF is inconsistently performed in observational settings, an...
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1161/circ.144.suppl_1.9704
10.1161/circ.144.suppl_1.9704
Abstract 9704: Mortality and Readmissions in Patients With Heart Failure With Preserved Ejection Fraction versus Heart Failure With Reduced Ejection Fraction
2,021
2021-11-16
journal-article
Ovid Technologies (Wolters Kluwer Health)
Circulation
144
Suppl_1
null
0009-7322, 1524-4539
null
Yaser Carcora, Amy Gravely, Venkatakrishna N Tholakanahalli, Selcuk Adabag
4
Dept of Cardiology, Univ of Minnesota, Minneapolis, MN
0
0
false
null
null
null
https://doi.org/10.1161/circ.144.suppl_1.9704
null
Introduction: Heart failure (HF) is a large public health problem with a 12 month mortality rate of 22% and a 30 day standardized readmission rate of 23%. We aimed to determine the differences in readmissions and long-term survival in patients with Heart Failure with Preserved Ejection Fraction (HFpEF) compared to Hear...
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1161/circheartfailure.111.966366
10.1161/circheartfailure.111.966366
Longitudinal Changes in Ejection Fraction in Heart Failure Patients With Preserved and Reduced Ejection Fraction
2,012
2012-11
journal-article
Ovid Technologies (Wolters Kluwer Health)
Circulation: Heart Failure
5
6
720-726
1941-3289, 1941-3297
null
Shannon M. Dunlay, Véronique L. Roger, Susan A. Weston, Ruoxiang Jiang, Margaret M. Redfield
5
From the Division of Cardiovascular Diseases in the Department of Internal Medicine (S.M.D., V.L.R., M.M.R.), and Department of Health Sciences Research (V.L.R., S.A.W., R.J.), Mayo Clinic, Rochester, Minnesota.
279
39
true
null
null
null
https://doi.org/10.1161/circheartfailure.111.966366
null
Background— Heart failure (HF) can occur in patients with preserved (HFpEF, EF≥50%) or reduced (HFrEF, EF<50%) ejection fraction (EF), but changes in EF after HF diagnosis are not well described. Methods and Results— Among a community cohort of incident HF patients diagnosed from 1984 to 2009 in Olmsted County, Minn...
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1161/circheartfailure.115.002826
10.1161/circheartfailure.115.002826
Heart Failure and Midrange Ejection Fraction
2,016
2016-04
journal-article
Ovid Technologies (Wolters Kluwer Health)
Circulation: Heart Failure
9
4
null
1941-3289, 1941-3297
null
Wilson Nadruz, Erin West, Mário Santos, Hicham Skali, John D. Groarke, Daniel E. Forman, Amil M. Shah
7
From the Division of Cardiovascular Medicine, Brigham and Women’s Hospital, Boston, MA (W.N., E.W., H.S., J.D.G., A.M.S.); Department of Internal Medicine, University of Campinas, Campinas, Brazil (W.N.); Department of Physiology and Cardiothoracic Surgery, Faculty of Medicine of University of Porto, Porto, Portugal (M...
88
22
true
null
null
null
https://doi.org/10.1161/circheartfailure.115.002826
null
Background— Evidence-based therapies for heart failure (HF) differ significantly according to left ventricular ejection fraction (LVEF). However, few data are available on the phenotype and prognosis of patients with HF with midrange LVEF of 40% to 55%, and the impact of recovered systolic function on the clinical feat...
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1161/circheartfailure.113.000154
10.1161/circheartfailure.113.000154
Response to Letter Regarding Article, “Longitudinal Changes in Ejection Fraction in Heart Failure Patients With Preserved and Reduced Ejection Fraction”
2,013
2013-03
journal-article
Ovid Technologies (Wolters Kluwer Health)
Circulation: Heart Failure
6
2
null
1941-3289, 1941-3297
null
Shannon M. Dunlay, Véronique L. Roger, Susan A. Weston, Ruoxiang Jiang, Margaret M. Redfield
5
Division of Cardiovascular DiseasesDepartment of Internal MedicineMayo ClinicRochester, MN
1
3
true
null
null
null
https://doi.org/10.1161/circheartfailure.113.000154
null
null
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1161/circ.135.suppl_1.mp031
10.1161/circ.135.suppl_1.mp031
Abstract MP031: Prospective Association of Obstructive Sleep Apnea Risk Factors with Heart Failure with Preserved Ejection Fraction and Not Heart Failure with Reduced Ejection Fraction in Postmenopausal Women
2,017
2017-03-07
journal-article
Ovid Technologies (Wolters Kluwer Health)
Circulation
135
suppl_1
null
0009-7322, 1524-4539
null
Patrick Koo, Umama Gorsi, Mary Roberts, Charles Eaton
4
Erlanger Health System, Univ of Tennessee College of Medicine Chattanooga, Chattanooga, TN
0
0
true
null
null
null
https://doi.org/10.1161/circ.135.suppl_1.mp031
null
Background: The relationship between obstructive sleep apnea (OSA) and heart failure (HF) has been under-researched especially in postmenopausal women. We therefore evaluated relationship between OSA risk factors and HFpEF and HFrEF in post-menopausal women. Methods: We performed a prospective analysis of a subset of p...
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1161/circheartfailure.120.007840
10.1161/circheartfailure.120.007840
Right Heart Phenotype in Heart Failure With Preserved Ejection Fraction
2,021
2021-04
journal-article
Ovid Technologies (Wolters Kluwer Health)
Circulation: Heart Failure
14
4
null
1941-3289, 1941-3297
null
Marco Guazzi, Robert Naeije
2
Department of Biological Sciences, University of Milano, Italy (M.G.).
47
88
true
http://creativecommons.org/licenses/by/4.0/
null
null
https://doi.org/10.1161/circheartfailure.120.007840
null
The health burden of heart failure with preserved ejection fraction is increasingly recognized. Despite improvements in diagnostic algorithms and established knowledge on the clinical trajectory, effective treatment options for heart failure with preserved ejection fraction remain limited, mainly because of the high me...
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1253/circj.cj-11-0568
10.1253/circj.cj-11-0568
Prognostic Impact of Myocardial Interstitial Fibrosis in Non-Ischemic Heart Failure - Comparison Between Preserved and Reduced Ejection Fraction Heart Failure -
2,011
2011
journal-article
Japanese Circulation Society
Circulation Journal
75
11
2605-2613
1346-9843, 1347-4820
null
Tatsuo Aoki, Yoshihiro Fukumoto, Koichiro Sugimura, Minako Oikawa, Kimio Satoh, Makoto Nakano, Masaharu Nakayama, Hiroaki Shimokawa
8
Department of Cardiovascular Medicine, Tohoku University Graduate School of Medicine
160
45
true
null
null
null
https://doi.org/10.1253/circj.cj-11-0568
null
null
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1161/hhf.0000000000000036
10.1161/hhf.0000000000000036
Correction to: Sex-Related Differences in Heart Failure With Preserved Ejection Fraction
2,020
2020-01
journal-article
Ovid Technologies (Wolters Kluwer Health)
Circulation: Heart Failure
13
1
null
1941-3289, 1941-3297
null
null
0
null
0
0
true
null
null
null
https://doi.org/10.1161/hhf.0000000000000036
null
null
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1161/circheartfailure.119.005956
10.1161/circheartfailure.119.005956
Phenotypic Persistence in Heart Failure With Preserved Ejection Fraction
2,019
2019-03
journal-article
Ovid Technologies (Wolters Kluwer Health)
Circulation: Heart Failure
12
3
null
1941-3289, 1941-3297
null
Walter J. Paulus
1
Amsterdam Cardiovascular Sciences, Amsterdam University Medical Centers, The Netherlands.
8
15
true
null
null
null
https://doi.org/10.1161/circheartfailure.119.005956
null
null
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1161/circ.150.suppl_1.4146021
10.1161/circ.150.suppl_1.4146021
Abstract 4146021: Post transcatheter aortic valve replacement outcomes among patients with heart failure with preserved ejection fraction versus heart failure with reduced ejection fraction.
2,024
2024-11-12
journal-article
Ovid Technologies (Wolters Kluwer Health)
Circulation
150
Suppl_1
null
0009-7322, 1524-4539
null
Vikash Jaiswal, Muhammad Hanif, Akash Jaiswal, Adriana Mares, FNU Sundas, Ramesh Daggubati, Kendra Grubb
7
JCCR Cardiology Research, Jaunpur, India
0
0
true
null
null
null
https://doi.org/10.1161/circ.150.suppl_1.4146021
null
Background: Heart failure with preserved ejection fraction (HFpEF) or heart failure with reduced ejection fraction (HFrEF) is a common comorbidity in patients undergoing transcatheter aortic valve replacement (TAVR). However, post-TAVR outcomes among HFpEF and HFrEF patients have not been well studied. Objective: This ...
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1253/circj.cj-18-0663
10.1253/circj.cj-18-0663
Monitoring Changes in Ejection Fraction in Patients With Heart Failure and Mid-Range Ejection Fraction
2,018
2018-07-25
journal-article
Japanese Circulation Society
Circulation Journal
82
8
1991-1993
1346-9843, 1347-4820
null
Masahiko Kato, Kazuhiro Yamamoto
2
Division of Cardiovascular Medicine, Department of Molecular Medicine and Therapeutics, Faculty of Medicine, Tottori University
0
13
true
null
null
null
https://doi.org/10.1253/circj.cj-18-0663
null
null
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1161/circheartfailure.122.010252
10.1161/circheartfailure.122.010252
Echocardiographic Features Beyond Ejection Fraction and Associated Outcomes in Patients With Heart Failure With Mildly Reduced or Preserved Ejection Fraction
2,023
2023-05
journal-article
Ovid Technologies (Wolters Kluwer Health)
Circulation: Heart Failure
16
5
null
1941-3289, 1941-3297
null
Anthony E. Peters, Robert M. Clare, Karen Chiswell, G. Michael Felker, Anita Kelsey, Robert Mentz, Adam D. DeVore
7
Division of Cardiology, Duke University School of Medicine, Durham, NC (A.E.P., G.M.F., A.K., R.M., A.D.D.).
6
47
true
null
null
null
https://doi.org/10.1161/circheartfailure.122.010252
null
Background: Heart failure (HF) guidelines recommend assessment of left ventricular ejection fraction (LVEF) to classify patients and guide therapy implementation. However, LVEF alone may be insufficient to adequately characterize patients with HF, especially those with mildly reduced or preserved LVEF. Recommendations ...
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1161/circheartfailure.117.003971
10.1161/circheartfailure.117.003971
Pericardiectomy to Treat Heart Failure With Preserved Ejection Fraction
2,017
2017-04
journal-article
Ovid Technologies (Wolters Kluwer Health)
Circulation: Heart Failure
10
4
null
1941-3289, 1941-3297
null
Martin M. LeWinter
1
From the Cardiology Unit, University of Vermont, Burlington.
2
30
true
null
null
null
https://doi.org/10.1161/circheartfailure.117.003971
null
null
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1161/circ.146.suppl_1.15630
10.1161/circ.146.suppl_1.15630
Abstract 15630: Association of Frailty With 30- and 90-day Outcomes in Patients Admitted With Heart Failure With Reduced Ejection Fraction (hfref) and Heart Failure With Preserved Ejection Fraction (hfpef)
2,022
2022-11-08
journal-article
Ovid Technologies (Wolters Kluwer Health)
Circulation
146
Suppl_1
null
0009-7322, 1524-4539
null
Sumitabh Singh, Neha Mulpuri, Nitin Kondamudi, Lin Zhong, Ambarish Pandey
5
Dept of Internal Medicine, UTSW MEDICAL CENTER, Dallas, TX
0
0
false
null
null
null
https://doi.org/10.1161/circ.146.suppl_1.15630
null
Background: Frailty is associated with adverse post-hospitalization outcomes among patients admitted with heart failure. Whether frailty associated risk of adverse events among HF patients differs by HF subtype (HFpEF vs. HFrEF) is not well-established. Methods: Using Medicare claims data, we identified patients newly ...
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1161/circheartfailure.109.932996
10.1161/circheartfailure.109.932996
Factors Associated With Outcome in Heart Failure With Preserved Ejection Fraction
2,011
2011-01
journal-article
Ovid Technologies (Wolters Kluwer Health)
Circulation: Heart Failure
4
1
27-35
1941-3289, 1941-3297
null
Michel Komajda, Peter E. Carson, Scott Hetzel, Robert McKelvie, John McMurray, Agata Ptaszynska, Michael R. Zile, David DeMets, Barry M. Massie
9
From the Pitie Salpetriere Hospital–University Pierre and Marie Curie Paris VI (M.K.), Paris, France; Georgetown University and Washington DC Veterans Affairs Medical Center (P.E.C.), Washington, DC; the Department of Biostatistics and Medical Informatics (S.H.), University of Wisconsin-Madison, Madison, Wis; Hamilton ...
228
40
true
null
null
null
https://doi.org/10.1161/circheartfailure.109.932996
null
Background— The determinants of prognosis in patients with heart failure and preserved ejection fraction (HF-PEF) are poorly documented. Methods and Results— We evaluated data from 4128 patients in the I-PRESERVE trial (Irbesartan in Heart Failure with Preserved Ejection Fraction Study). Multivariable Cox regression mo...
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1161/circheartfailure.110.959890
10.1161/circheartfailure.110.959890
Body Mass Index and Adverse Cardiovascular Outcomes in Heart Failure Patients With Preserved Ejection Fraction
2,011
2011-05
journal-article
Ovid Technologies (Wolters Kluwer Health)
Circulation: Heart Failure
4
3
324-331
1941-3289, 1941-3297
null
Markus Haass, Dalane W. Kitzman, Inder S. Anand, Alan Miller, Michael R. Zile, Barry M. Massie, Peter E. Carson
7
From the Department of Cardiology, Theresienkrankenhaus, Mannheim, Germany (M.H.); Wake Forest University School of Medicine, Winston-Salem, NC (D.W.K.); VA Medical Center, Minneapolis, MN (I.S.A.); University of Florida, Jacksonville, FL (A.M.); Ralph H. Johnson Veterans Affairs Medical Center and Medical University o...
303
27
true
null
null
null
https://doi.org/10.1161/circheartfailure.110.959890
null
Background— Obesity is a major risk factor for incident heart failure (HF). Paradoxically, in HF with reduced left ventricular ejection fraction (HFREF), a high body mass index (BMI) appears to be beneficial. Approximately 50% of HF patients have a preserved left ventricular ejection fraction (HFPEF). However, there ar...
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1161/circheartfailure.113.000422
10.1161/circheartfailure.113.000422
<i>Circulation: Heart Failure</i> Editors’ Picks
2,013
2013-05
journal-article
Ovid Technologies (Wolters Kluwer Health)
Circulation: Heart Failure
6
3
null
1941-3289, 1941-3297
null
Robb D. Kociol
1
null
0
23
true
null
null
null
https://doi.org/10.1161/circheartfailure.113.000422
null
null
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1161/circheartfailure.116.003318
10.1161/circheartfailure.116.003318
Heart Failure With a Better Ejection Fraction
2,016
2016-07
journal-article
Ovid Technologies (Wolters Kluwer Health)
Circulation: Heart Failure
9
7
null
1941-3289, 1941-3297
null
Anupam Basuray, James C. Fang
2
From the OhioHealth Heart &amp; Vascular Department, Riverside Methodist Hospital, Columbus (A.B.); and Division of Cardiovascular Medicine, University of Utah Health Sciences Center, Salt Lake City (J.C.F.).
3
20
true
null
null
null
https://doi.org/10.1161/circheartfailure.116.003318
null
null
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1161/circulationaha.111.071696
10.1161/circulationaha.111.071696
Heart Failure With Preserved Ejection Fraction
2,011
2011-11-22
journal-article
Ovid Technologies (Wolters Kluwer Health)
Circulation
124
21
null
0009-7322, 1524-4539
null
James E. Udelson
1
From the Division of Cardiology and the CardioVascular Center, Tufts Medical Center, Boston, MA.
96
22
true
null
null
null
https://doi.org/10.1161/circulationaha.111.071696
null
null
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1016/j.hlc.2018.06.094
10.1016/j.hlc.2018.06.094
Characteristics and Clinical Outcomes in Patients with Heart Failure with Preserved Ejection Fraction Compared with Heart Failure with Reduced Ejection Fraction: Insights from the Victorian Cardiac Outcomes Registry Heart Failure Module
2,018
2018
journal-article
Elsevier BV
Heart, Lung and Circulation
27
null
S84-S85
1443-9506
null
C. Tan, D. Dinh, A. Brennan, C. Reid, A. Driscoll, J. Lefkovits, D. Stub
7
null
0
0
true
https://www.elsevier.com/tdm/userlicense/1.0/
null
null
https://doi.org/10.1016/j.hlc.2018.06.094
null
null
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1161/circ.134.suppl_1.11839
10.1161/circ.134.suppl_1.11839
Abstract 11839: Comparisons of Cardiopulmonary Exercise Testing Between Heart Failure With Reduced Ejection Fraction and Preserved Ejection Fraction
2,016
2016-11-11
journal-article
Ovid Technologies (Wolters Kluwer Health)
Circulation
134
suppl_1
null
0009-7322, 1524-4539
null
Takamasa Sato, Yuki Kanno, Akiomi Yoshihisa, Yasuchika Takeishi
4
Dept of Cardiovascular Medicine, Fukushima Med Univ, Fukushima, Japan
0
0
false
null
null
null
https://doi.org/10.1161/circ.134.suppl_1.11839
null
Background: Parameters derived from cardiopulmonary exercise testing (CPET) are important prognostic markers, especially peak oxygen consumption (VO 2 ), the minute ventilation carbon dioxide production slope (VE/VCO 2 slope), exertional oscillatory ventilation (EOV) and oxygen uptake efficiency slope (OUES) in chronic...
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1161/circheartfailure.124.012187
10.1161/circheartfailure.124.012187
Heart Failure With Preserved Ejection Fraction: From a Vascular Perspective
2,024
2024-09
journal-article
Ovid Technologies (Wolters Kluwer Health)
Circulation: Heart Failure
17
9
null
1941-3289, 1941-3297
null
Guillaume Goudot, Marie Denise Gerhard-Herman
2
Vascular Medicine Department, Université Paris Cité, Vascular Medicine Department, Georges Pompidou European Hospital, Assistance Publique - Hôpitaux de Paris, Paris, France. Vascular Medicine Department, Université Paris Cité, Georges Pompidou European Hospital, Assistance Publique - Hôpitaux de Paris, France (G.G.).
3
9
true
null
null
null
https://doi.org/10.1161/circheartfailure.124.012187
null
null
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1253/circj.cj-18-1305
10.1253/circj.cj-18-1305
Heart Failure Mid-Range Ejection Fraction ― Heart Failure With Multiple Personalities ―
2,019
2019-01-25
journal-article
Japanese Circulation Society
Circulation Journal
83
2
274-276
1346-9843, 1347-4820
null
Shin-ichi Momomura, Miyuki Ito
2
Cardiovascular Medicine, Saitama Medical Center Jichi Medical University
0
14
true
null
null
null
https://doi.org/10.1253/circj.cj-18-1305
null
null
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1161/circheartfailure.112.000216
10.1161/circheartfailure.112.000216
Effects of Exercise on Left Ventricular Systolic and Diastolic Properties in Patients With Heart Failure and a Preserved Ejection Fraction Versus Heart Failure and a Reduced Ejection Fraction
2,013
2013-05
journal-article
Ovid Technologies (Wolters Kluwer Health)
Circulation: Heart Failure
6
3
508-516
1941-3289, 1941-3297
null
Michael R. Zile, Barbro Kjellstrom, Tom Bennett, Yong Cho, Catalin F. Baicu, Mark F. Aaron, William T. Abraham, Robert C. Bourge, Fred J. Kueffer
9
From the Medical University of South Carolina and RHJ Department of Veterans Affairs Medical Center, Charleston, SC (M.R.Z., C.F.B.); Cardiology Unit, Department of Medicine, Karolinska Institutet, Stockholm, Sweden (B.K.); Medtronic, Inc, Minneapolis, MN (T.B., Y.C., F.J.K.); St Thomas Hospital, Nashville, TN (M.F.A.)...
58
31
true
null
null
null
https://doi.org/10.1161/circheartfailure.112.000216
null
Background— The purpose of the current study was to define exercise-induced changes in indices of left ventricular (LV) systolic and diastolic properties in patients with chronic heart failure (HF), compare these changes in patients with HF and a reduced ejection fraction (EF) versus HF and a preserved EF, and compare ...
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1161/circheartfailure.113.000823
10.1161/circheartfailure.113.000823
Pulmonary Hypertension in Heart Failure Preserved Ejection Fraction
2,014
2014-03
journal-article
Ovid Technologies (Wolters Kluwer Health)
Circulation: Heart Failure
7
2
367-377
1941-3289, 1941-3297
null
Marco Guazzi
1
From the Heart Failure Unit and Cardiopulmonary Laboratory, Cardiology, IRCCS, Policlinico San Donato University Hospital, Milan, Italy.
113
66
true
null
null
null
https://doi.org/10.1161/circheartfailure.113.000823
null
null
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1016/j.hlc.2026.07.339
10.1016/j.hlc.2026.07.339
Prescription Rates of Guideline-Directed Medical Therapy in Cardiology Patients Admitted With Heart Failure With Reduced Ejection Fraction (HFrEF) or Heart Failure With Mildly Reduced Ejection Fraction (HFmrEF)
2,026
2026-08
journal-article
Elsevier BV
Heart, Lung and Circulation
35
null
S258
1443-9506
null
R. Lambert, J. Ang, A. Hijazi, R. Useelananthan, U. Premawardhana, K. Kadappu
6
null
0
0
true
https://www.elsevier.com/tdm/userlicense/1.0/
null
null
https://doi.org/10.1016/j.hlc.2026.07.339
null
null
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1161/circheartfailure.119.006213
10.1161/circheartfailure.119.006213
Heart Rate and Heart Failure With Preserved Ejection Fraction
2,019
2019-08
journal-article
Ovid Technologies (Wolters Kluwer Health)
Circulation: Heart Failure
12
8
null
1941-3289, 1941-3297
null
Markus Meyer, Martin M LeWinter
2
Cardiology Unit, Department of Medicine, Larner College of Medicine at the University of Vermont, Burlington.
79
28
true
null
null
null
https://doi.org/10.1161/circheartfailure.119.006213
null
null
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1161/circ.150.suppl_1.4141805
10.1161/circ.150.suppl_1.4141805
Abstract 4141805: High Frequency of Ejection Fraction Decline in Patients with Heart Failure with Improved Ejection Fraction
2,024
2024-11-12
journal-article
Ovid Technologies (Wolters Kluwer Health)
Circulation
150
Suppl_1
null
0009-7322, 1524-4539
null
Anthony Pensa, Lucia Davis, Tingqing Wu, Veronica Zheng, Rebecca Harap, Jane Wilcox
6
Northwestern University, Chicago, Illinois, United States
0
0
true
null
null
null
https://doi.org/10.1161/circ.150.suppl_1.4141805
null
Background: Heart failure with improved ejection fraction (HFimpEF) is defined by prior HF with reduced EF (HFrEF) and evidence of systolic improvement and is associated with improved outcomes. Despite this, HFimpEF patients remain at risk of future adverse events, including EF decline. However, little is known about f...
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1253/circrep.cr-20-0021
10.1253/circrep.cr-20-0021
Heart Failure With Preserved Ejection Fraction vs. Reduced Ejection Fraction ― Mechanisms of Ventilatory Inefficiency During Exercise in Heart Failure ―
2,020
2020-05-08
journal-article
Japanese Circulation Society
Circulation Reports
2
5
271-279
2434-0790
null
Shingo Tsujinaga, Hiroyuki Iwano, Yasuyuki Chiba, Suguru Ishizaka, Miwa Sarashina, Michito Murayama, Masahiro Nakabachi, Hisao Nishino, Shinobu Yokoyama, Kazunori Okada, Sanae Kaga, Toshihisa Anzai
12
Department of Cardiovascular Medicine, Faculty of Medicine and Graduate School of Medicine, Hokkaido University
7
27
true
null
null
null
https://doi.org/10.1253/circrep.cr-20-0021
null
null
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1161/circulationaha.108.819318
10.1161/circulationaha.108.819318
Hypertension, Heart Failure, and Ejection Fraction
2,008
2008-11-25
journal-article
Ovid Technologies (Wolters Kluwer Health)
Circulation
118
22
2223-2223
0009-7322, 1524-4539
null
William C. Little
1
From the Section of Cardiology, Wake Forest University School of Medicine, Winston-Salem, NC.
12
14
true
null
null
null
https://doi.org/10.1161/circulationaha.108.819318
null
null
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1161/hhf.0000000000000075
10.1161/hhf.0000000000000075
Correction to: “Polygenic Score for β-Blocker Survival Benefit in European Ancestry Patients With Reduced Ejection Fraction Heart Failure”
2,022
2022-04
journal-article
Ovid Technologies (Wolters Kluwer Health)
Circulation: Heart Failure
15
4
null
1941-3289, 1941-3297
null
null
0
null
0
0
true
null
null
null
https://doi.org/10.1161/hhf.0000000000000075
null
null
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1161/circheartfailure.122.009867
10.1161/circheartfailure.122.009867
Why We Should Care About Who Cares for Patients With Heart Failure With Preserved Ejection Fraction
2,022
2022-08
journal-article
Ovid Technologies (Wolters Kluwer Health)
Circulation: Heart Failure
15
8
null
1941-3289, 1941-3297
null
Sanjiv J. Shah
1
Division of Cardiology, Department of Medicine, and Bluhm Cardiovascular Institute, Northwestern University Feinberg School of Medicine, Chicago, IL.
6
14
true
null
null
null
https://doi.org/10.1161/circheartfailure.122.009867
null
null
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1161/cir.0000000000000464
10.1161/cir.0000000000000464
Correction to: Heart Failure With Preserved Ejection Fraction: A Kidney Disorder?
2,016
2016-10-04
journal-article
Ovid Technologies (Wolters Kluwer Health)
Circulation
134
14
null
0009-7322, 1524-4539
null
null
0
null
0
0
true
null
null
null
https://doi.org/10.1161/cir.0000000000000464
null
null
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1161/res.133.suppl_1.p2086
10.1161/res.133.suppl_1.p2086
Abstract P2086: Targeting Endothelial Dysfunction And Senescence An Heart Failure With Preserved Ejection Fraction - A Whole Transcriptome Analysis Of Heart Failure With Preserved Ejection Fraction-patients To Identify New Therapeutic Targets
2,023
2023-08-04
journal-article
Ovid Technologies (Wolters Kluwer Health)
Circulation Research
133
Suppl_1
null
0009-7330, 1524-4571
null
Leonie Wurmbrand, Katrin Kalies, Kai Knoepp, Jochen Dutzmann, Daniel SEDDING
5
Univ Hosp Halle (Saale), Halle, Germany
0
0
false
null
null
null
https://doi.org/10.1161/res.133.suppl_1.p2086
null
Heart failure with preserved ejection fraction (HFpEF) remains a disease with a poor prognosis and increasing incidence in all Western countries mainly affecting the aging population. A deeper understanding of pathogenesis at the cellular level, particularly the central role of endothelial dysfunction in cellular senes...
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1161/circheartfailure.119.006833
10.1161/circheartfailure.119.006833
Improvement in Left Ventricular Ejection Fraction in Outpatients With Heart Failure With Reduced Ejection Fraction
2,020
2020-07
journal-article
Ovid Technologies (Wolters Kluwer Health)
Circulation: Heart Failure
13
7
null
1941-3289, 1941-3297
null
Adam D. DeVore, Anne S. Hellkamp, Laine Thomas, Nancy M. Albert, Javed Butler, J. Herbert Patterson, John A. Spertus, Fredonia B. Williams, Carol I. Duffy, Adrian F. Hernandez, Gregg C. Fonarow
11
Duke Clinical Research Institute, Durham, NC (A.D.D., A.S.H., L.T., A.F.H.).
43
21
true
null
null
null
https://doi.org/10.1161/circheartfailure.119.006833
null
Background: Among patients with heart failure (HF) with reduced ejection fraction (EF), improvements in left ventricular EF (LVEF) are associated with better outcomes and remain an important treatment goal. Patient factors associated with LVEF improvement in routine clinical practice have not been clearly defined. Meth...
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1161/hhf.0000000000000031
10.1161/hhf.0000000000000031
Correction to: Prognostic Value of Albuminuria and Influence of Spironolactone in Heart Failure With Preserved Ejection Fraction: The TOPCAT Trial
2,018
2018-12
journal-article
Ovid Technologies (Wolters Kluwer Health)
Circulation: Heart Failure
11
12
null
1941-3289, 1941-3297
null
null
0
null
1
0
true
null
null
null
https://doi.org/10.1161/hhf.0000000000000031
null
null
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1161/circulationaha.115.018954
10.1161/circulationaha.115.018954
Conventional Wisdom in Heart Failure Treatment Challenged Again
2,015
2015-11-03
journal-article
Ovid Technologies (Wolters Kluwer Health)
Circulation
132
18
1687-1689
0009-7322, 1524-4539
null
Dalane W. Kitzman
1
From Sections on Cardiovascular Medicine and Gerontology, Wake Forest School of Medicine, Winston-Salem, NC.
2
20
true
null
null
null
https://doi.org/10.1161/circulationaha.115.018954
null
null
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1161/circheartfailure.125.013183
10.1161/circheartfailure.125.013183
Atrioventricular Dyssynchrony and Dyspnea in Heart Failure With Preserved Ejection Fraction
2,025
2025-07
journal-article
Ovid Technologies (Wolters Kluwer Health)
Circulation: Heart Failure
18
7
null
1941-3289, 1941-3297
null
Teodora Donisan, Sara Inglis, Samuel J. Asirvatham, Barry A. Borlaug
4
Division of Cardiovascular Diseases, Department of Medicine (T.D., S.I., S.J.A., B.A.B.), Mayo Clinic, Rochester, MN.
0
4
true
null
null
null
https://doi.org/10.1161/circheartfailure.125.013183
null
null
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1161/circheartfailure.109.924191
10.1161/circheartfailure.109.924191
Letter by Prakash Regarding Article “Impaired Heart Rate Recovery and Chronotropic Incompetence in Patients With Heart Failure With Preserved Ejection Fraction”
2,010
2010-03
journal-article
Ovid Technologies (Wolters Kluwer Health)
Circulation: Heart Failure
3
2
null
1941-3289, 1941-3297
null
E.S. Prakash
1
Department of Physiology, Faculty of Medicine, AIMST University, Bedong, Kedah, Malaysia
0
5
true
null
null
null
https://doi.org/10.1161/circheartfailure.109.924191
null
null
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1161/circheartfailure.117.004179
10.1161/circheartfailure.117.004179
Microvascular Paradigm in Heart Failure With Preserved Ejection Fraction
2,017
2017-06
journal-article
Ovid Technologies (Wolters Kluwer Health)
Circulation: Heart Failure
10
6
null
1941-3289, 1941-3297
null
Mark T. Waddingham, Walter J. Paulus
2
From the Department of Physiology, Amsterdam Cardiovascular Sciences, VU University Medical Center, The Netherlands.
12
20
true
null
null
null
https://doi.org/10.1161/circheartfailure.117.004179
null
null
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1161/circulationaha.117.031622
10.1161/circulationaha.117.031622
Sex and Race Differences in Lifetime Risk of Heart Failure With Preserved Ejection Fraction and Heart Failure With Reduced Ejection Fraction
2,018
2018-04-24
journal-article
Ovid Technologies (Wolters Kluwer Health)
Circulation
137
17
1814-1823
0009-7322, 1524-4539
null
Ambarish Pandey, Wally Omar, Colby Ayers, Michael LaMonte, Liviu Klein, Norrina B. Allen, Lewis H. Kuller, Philip Greenland, Charles B. Eaton, John S. Gottdiener, Donald M. Lloyd-Jones, Jarett D. Berry
12
Division of Cardiology (A.P., W.O., C.A., J.D.B.)
204
33
true
null
null
null
https://doi.org/10.1161/circulationaha.117.031622
null
Background: Lifetime risk of heart failure has been estimated to range from 20% to 46% in diverse sex and race groups. However, lifetime risk estimates for the 2 HF phenotypes, HF with preserved ejection fraction (HFpEF) and HF with reduced ejection fraction (HFrEF), are not known. Methods: Participant-level data from ...
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1161/circ.146.suppl_1.13786
10.1161/circ.146.suppl_1.13786
Abstract 13786: Effectiveness of Ambulatory Pulmonary Artery Pressure-Guided Therapy in Reducing Readmissions in Patients With Heart Failure With Reduced Ejection Fraction versus Heart Failure With Preserved Ejection Fraction
2,022
2022-11-08
journal-article
Ovid Technologies (Wolters Kluwer Health)
Circulation
146
Suppl_1
null
0009-7322, 1524-4539
null
Akshay Goel, Aaqib H Malik, Dhrubajyoti Bandyopadhyay, Rahul Gupta, Adrija Hajra, Alexandros Briasoulis, Wilbert S Aronow, Julio A Panza, Gregg Lanier
9
Westchester Med Cntr, New York Med College, Valhalla, NY
0
0
false
null
null
null
https://doi.org/10.1161/circ.146.suppl_1.13786
null
Introduction: The cardio-microelectromechanical system (CardioMEMS) is an implantable pulmonary artery pressure monitoring device that aims to avoid decompensated heart failure (HF) admissions through hemodynamic-guided care. The aim of our study was to compare the impact of CardioMEMS implantation on hospital readmiss...
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1161/circheartfailure.116.003272
10.1161/circheartfailure.116.003272
Zooming in on the Microvasculature in Heart Failure With Preserved Ejection Fraction
2,016
2016-07
journal-article
Ovid Technologies (Wolters Kluwer Health)
Circulation: Heart Failure
9
7
null
1941-3289, 1941-3297
null
Selma F. Mohammed, David T. Majure, Margaret M. Redfield
3
From the MedStar Cardiovascular Research Network, Washington, DC (S.F.M., D.T.M.); and Department of Cardiovascular Disease, Mayo Clinic, Rochester, MN (M.M.R.).
26
20
true
null
null
null
https://doi.org/10.1161/circheartfailure.116.003272
null
null
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.1016/j.hlc.2023.06.054
10.1016/j.hlc.2023.06.054
Changes in Left Ventricular Ejection Fraction (LVEF) Predict Mortality in Heart Failure Patients With Reduced Ejection Fraction
2,023
2023-07
journal-article
Elsevier BV
Heart, Lung and Circulation
32
null
S146
1443-9506
null
L. Kearney, A. Williamson, E. Chowdhury, M. Duong, J. McGillion, N. Schwarz, D. Eccleston
7
null
0
0
true
https://www.elsevier.com/tdm/userlicense/1.0/
null
null
https://doi.org/10.1016/j.hlc.2023.06.054
null
null
null
en
nj5YG48JjwL87PJPG
4bGdorXWrGItmYWNp
10.5772/intechopen.78235
10.5772/intechopen.78235
Carbon Dioxide Utilization and Sequestration in Kerogen Nanopores
2,018
2018-09-12
book-chapter
InTech
Carbon Capture, Utilization and Sequestration
null
null
null
null
9781789237641, 9781789237658
Cudjoe Sherifa, Barati Reza
2
null
5
32
true
https://creativecommons.org/licenses/by/3.0/legalcode
null
null
https://doi.org/10.5772/intechopen.78235
null
null
null
en
G6qprqZbD7XMLoddZ
ATUypp8JCOYgQSsPO
10.5772/intechopen.79414
10.5772/intechopen.79414
Interfacial Tension and Contact Angle Data Relevant to Carbon Sequestration
2,018
2018-09-12
book-chapter
InTech
Carbon Capture, Utilization and Sequestration
null
null
null
null
9781789237641, 9781789237658
Prem Bikkina, Imran Shaik
2
null
3
81
true
https://creativecommons.org/licenses/by/3.0/legalcode
null
null
https://doi.org/10.5772/intechopen.79414
null
null
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G6qprqZbD7XMLoddZ
ATUypp8JCOYgQSsPO
10.5772/intechopen.78394
10.5772/intechopen.78394
An Innovative Approach in Post Combustion Carbon Capture and Sequestration towards Reduction of Energy Penalty in Regeneration of Solvent
2,018
2018-09-12
book-chapter
InTech
Carbon Capture, Utilization and Sequestration
null
null
null
null
9781789237641, 9781789237658
Vinod Krishna Sethi, Partha S. Dutta
2
null
0
16
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https://creativecommons.org/licenses/by/3.0/legalcode
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null
https://doi.org/10.5772/intechopen.78394
null
null
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en
G6qprqZbD7XMLoddZ
ATUypp8JCOYgQSsPO
10.1016/j.ccst.2024.100257
10.1016/j.ccst.2024.100257
Biomimetic mineralization for carbon capture and sequestration
2,024
2024-12
journal-article
Elsevier BV
Carbon Capture Science &amp; Technology
13
null
100257
2772-6568
null
Yifei Ma, Shouliang Yi, Meng Wang
3
null
17
202
true
https://www.elsevier.com/tdm/userlicense/1.0/
null
null
https://doi.org/10.1016/j.ccst.2024.100257
null
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G6qprqZbD7XMLoddZ
ATUypp8JCOYgQSsPO
10.5772/intechopen.79347
10.5772/intechopen.79347
Carbon Sequestration in Soils: The Opportunities and Challenges
2,018
2018-09-12
book-chapter
InTech
Carbon Capture, Utilization and Sequestration
null
null
null
null
9781789237641, 9781789237658
Ahmed Chinade Abdullahi, Chamhuri Siwar, Mohamad Isma’il Shaharudin, Isahak Anizan
4
null
16
43
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https://creativecommons.org/licenses/by/3.0/legalcode
null
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https://doi.org/10.5772/intechopen.79347
null
null
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en
G6qprqZbD7XMLoddZ
ATUypp8JCOYgQSsPO
10.58445/rars.770
10.58445/rars.770
Assessment of carbon capture techniques and their carbon sequestration potential, technical characteristics, and cost.
2,023
2023-12-03
posted-content
Polygence
null
null
null
null
null
null
Connor Yu
1
null
0
0
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https://creativecommons.org/licenses/by-nc-nd/4.0
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https://doi.org/10.58445/rars.770
null
null
null
null
G6qprqZbD7XMLoddZ
ATUypp8JCOYgQSsPO
10.5772/intechopen.84428
10.5772/intechopen.84428
Carbon Capture and Storage (CCS): Geological Sequestration of CO<sub>2</sub>
2,020
2020-07-22
book-chapter
IntechOpen
CO2 Sequestration
null
null
null
null
9781839629921, 9781839629938
Nediljka Gaurina-Međimurec, Karolina Novak Mavar
2
null
20
53
true
https://creativecommons.org/licenses/by/3.0/legalcode
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null
https://doi.org/10.5772/intechopen.84428
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G6qprqZbD7XMLoddZ
ATUypp8JCOYgQSsPO
10.5772/intechopen.78237
10.5772/intechopen.78237
Blue Carbon on Polar and Subpolar Seabeds
2,018
2018-09-12
book-chapter
InTech
Carbon Capture, Utilization and Sequestration
null
null
null
null
9781789237641, 9781789237658
David Keith Alan Barnes
1
null
14
30
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https://creativecommons.org/licenses/by/3.0/legalcode
null
null
https://doi.org/10.5772/intechopen.78237
null
null
null
en
G6qprqZbD7XMLoddZ
ATUypp8JCOYgQSsPO
10.5772/intechopen.79336
10.5772/intechopen.79336
Enhancing Carbon Sequestration Using Organic Amendments and Agricultural Practices
2,018
2018-09-12
book-chapter
InTech
Carbon Capture, Utilization and Sequestration
null
null
null
null
9781789237641, 9781789237658
Zia Ur Rahman Farooqi, Muhammad Sabir, Nukshab Zeeshan, Khurram Naveed, Muhammad Mahroz Hussain
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ATUypp8JCOYgQSsPO
10.1016/j.ccst.2023.100137
10.1016/j.ccst.2023.100137
Emerging towards zero carbon footprint via carbon dioxide capturing and sequestration
2,023
2023-12
journal-article
Elsevier BV
Carbon Capture Science &amp; Technology
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100137
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Anjana Krishnan, Amrita Nighojkar, Balasubramanian Kandasubramanian
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ATUypp8JCOYgQSsPO
10.1016/j.ccst.2026.100624
10.1016/j.ccst.2026.100624
CO2-enriched ammonium solutions for enhanced carbon capture and sequestration in cement systems
2,026
2026-06
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Elsevier BV
Carbon Capture Science &amp; Technology
19
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2772-6568
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Ahmed Fatah, Ahmed Al-Yaseri, Rida Assaggaf, Hani Al-Mukainah
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ATUypp8JCOYgQSsPO
10.1016/b978-0-443-22328-0.00007-0
10.1016/b978-0-443-22328-0.00007-0
Carbon Capture, Sequestration, and Utilization
2,025
2025
book-chapter
Elsevier
The Carbon Footprint of our Primary Energy Sources
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227-256
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9780443223280
Mukul M. Sharma
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ATUypp8JCOYgQSsPO
10.1007/s11440-013-0235-6
10.1007/s11440-013-0235-6
Carbon capture and sequestration versus carbon capture utilisation and storage for enhanced oil recovery
2,014
2014-02
journal-article
Springer Science and Business Media LLC
Acta Geotechnica
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1
29-38
1861-1125, 1861-1133
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Bob Harrison, Gioia Falcone
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ATUypp8JCOYgQSsPO
10.1533/9781845699581.3.271
10.1533/9781845699581.3.271
Terrestrial sequestration of carbon dioxide (CO2)
2,010
2010
book-chapter
Elsevier
Developments and Innovation in Carbon Dioxide (CO2) Capture and Storage Technology
null
null
271-303
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9781845697976
R. Lal
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3
110
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ATUypp8JCOYgQSsPO
10.5772/intechopen.78545
10.5772/intechopen.78545
Chemical Absorption by Aqueous Solution of Ammonia
2,018
2018-09-12
book-chapter
InTech
Carbon Capture, Utilization and Sequestration
null
null
null
null
9781789237641, 9781789237658
Gianluca Valenti, Davide Bonalumi
2
null
3
43
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ATUypp8JCOYgQSsPO
10.1017/9781009008877.011
10.1017/9781009008877.011
Carbon Capture and Sequestration
2,022
2022-02-28
book-chapter
Cambridge University Press
Pandora's Toolbox
null
null
171-186
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9781009008877, 9781316518434, 9781009009225
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0
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ATUypp8JCOYgQSsPO
10.1016/b978-0-12-812041-5.00022-2
10.1016/b978-0-12-812041-5.00022-2
CO 2 utilization and other sequestration options
2,017
2017
book-chapter
Elsevier
Carbon Capture and Storage
null
null
577-591
null
9780128120415
Stephen A. Rackley
1
null
5
16
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https://www.elsevier.com/tdm/userlicense/1.0/
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G6qprqZbD7XMLoddZ
ATUypp8JCOYgQSsPO
10.1007/978-3-319-27019-7_1
10.1007/978-3-319-27019-7_1
Carbon Capture, Transport and Geologic Storage: A Brief Introduction
2,016
2016
book-chapter
Springer International Publishing
Geologic Carbon Sequestration
null
null
3-18
null
9783319270173, 9783319270197
Nikhil Jain, Akash Srivastava, T. N. Singh
3
null
5
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https://doi.org/10.1007/978-3-319-27019-7_1
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ATUypp8JCOYgQSsPO
10.1016/b978-0-12-822316-1.00010-0
10.1016/b978-0-12-822316-1.00010-0
Carbon Capture, Utilization, and Sequestration
2,023
2023
book-chapter
Elsevier
Elements of Petroleum Geology
null
null
567-584
null
9780128223161
Richard C. Selley, Stephen A. Sonnenberg
2
null
2
21
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https://www.elsevier.com/tdm/userlicense/1.0/
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ATUypp8JCOYgQSsPO
10.1002/9781118175552.ch9
10.1002/9781118175552.ch9
Carbon Capture Using Amine‐Based Technology
2,011
2011-06-13
other
Wiley
Carbon Dioxide Sequestration and Related Technologies
null
null
121-131
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9780470938768, 9781118175552
Ben Spooner, David Engel
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ATUypp8JCOYgQSsPO
10.1016/b978-0-443-18820-6.00013-8
10.1016/b978-0-443-18820-6.00013-8
Sustainability of microbial carbon capture cells for carbon sequestration and biomass generation
2,024
2024
book-chapter
Elsevier
Advances in Environmental Electrochemistry
null
null
217-243
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9780443188206
B. Neethu, K. Ihjas
2
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0
149
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ATUypp8JCOYgQSsPO
10.1007/978-3-319-53845-7_13
10.1007/978-3-319-53845-7_13
Carbon Capture and Storage in Geologic Formations
2,017
2017
book-chapter
Springer International Publishing
Carbon Sequestration for Climate Change Mitigation and Adaptation
null
null
497-545
null
9783319538433, 9783319538457
David A.N. Ussiri, Rattan Lal
2
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4
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ATUypp8JCOYgQSsPO
10.1533/9781845699581.3.304
10.1533/9781845699581.3.304
Ocean sequestration of carbon dioxide (CO2)
2,010
2010
book-chapter
Elsevier
Developments and Innovation in Carbon Dioxide (CO2) Capture and Storage Technology
null
null
304-323
null
9781845697976
D. Golomb, S. Pennell
2
null
2
36
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ATUypp8JCOYgQSsPO
10.1016/j.ccst.2024.100231
10.1016/j.ccst.2024.100231
Storage capacity estimates and site conditions of potential locations for offshore-wind powered carbon dioxide removal and carbon sequestration in ocean basalt
2,024
2024-12
journal-article
Elsevier BV
Carbon Capture Science &amp; Technology
13
null
100231
2772-6568
null
Heather Norton, Devin Todd, Curran Crawford
3
null
5
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https://doi.org/10.1016/j.ccst.2024.100231
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ATUypp8JCOYgQSsPO
10.5772/intechopen.79296
10.5772/intechopen.79296
Tracking CO2 Migration in Storage Aquifer
2,018
2018-09-12
book-chapter
InTech
Carbon Capture, Utilization and Sequestration
null
null
null
null
9781789237641, 9781789237658
Luqman Kolawole Abidoye, Diganta Bhusan Das
2
null
1
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ATUypp8JCOYgQSsPO
10.1016/j.carbon.2020.10.078
10.1016/j.carbon.2020.10.078
Nitrogen-rich hierarchical porous carbon paper for a free-standing cathode of lithium sulfur battery
2,021
2021-02
journal-article
Elsevier BV
Carbon
172
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624-636
0008-6223
null
Jae Hyun Park, Won Yeong Choi, Jeongwoo Yang, Dohyeun Kim, Hyeonseo Gim, Jae W. Lee
6
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70
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https://www.elsevier.com/tdm/userlicense/1.0/
Ministry of Science, ICT and Future Planning, Korea Carbon Capture and Sequestration R and D Center, Korea Carbon Capture and Sequestration R and D Center
10.13039/501100003621, 10.13039/501100010239, 10.13039/501100010239
https://doi.org/10.1016/j.carbon.2020.10.078
null
null
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G6qprqZbD7XMLoddZ
ATUypp8JCOYgQSsPO
10.1016/j.ccst.2026.100584
10.1016/j.ccst.2026.100584
Direct air capture (DAC) and CO2 sequestration with waste brine using a novel sorbent at ambient temperature
2,026
2026-03
journal-article
Elsevier BV
Carbon Capture Science &amp; Technology
18
null
100584
2772-6568
null
Xinkai Wu, Hao Chen, Haibo Liu, Arup K. SenGupta
4
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1
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Lehigh University
10.13039/100008234
https://doi.org/10.1016/j.ccst.2026.100584
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null
null
en
G6qprqZbD7XMLoddZ
ATUypp8JCOYgQSsPO
10.1039/c9nr10552b
10.1039/c9nr10552b
Transformation of carbon dioxide into carbon nanotubes for enhanced ion transport and energy storage
2,020
2020
journal-article
Royal Society of Chemistry (RSC)
Nanoscale
12
14
7822-7833
2040-3364, 2040-3372
null
Gi Mihn Kim, Won-Gwang Lim, Dohyung Kang, Jae Hyun Park, Hyunjoo Lee, Jinwoo Lee, Jae W. Lee
7
Department of Chemical and Biomolecular Engineering
59
61
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http://rsc.li/journals-terms-of-use
Korea Carbon Capture and Sequestration R and D Center, Korea Carbon Capture and Sequestration R and D Center
10.13039/501100010239, 10.13039/501100010239
https://doi.org/10.1039/c9nr10552b
null
CO 2 -derived-CNTs (CCNTs) prepared at 500–700 °C (1 atm) show excellent supercapacitance due to B/O doping and fast ion transport through mesoporous CCNT fibers.
null
en
G6qprqZbD7XMLoddZ
ATUypp8JCOYgQSsPO
10.1016/b978-0-12-820269-2.00004-4
10.1016/b978-0-12-820269-2.00004-4
Energy transition impact on unconventional reservoirs: Carbon capture and sequestration
2,023
2023
book-chapter
Elsevier
Tight Oil Reservoirs
null
null
277-314
null
9780128202692
Hadi A. Belhaj
1
null
0
112
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https://www.elsevier.com/tdm/userlicense/1.0/
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ATUypp8JCOYgQSsPO
10.3390/thermo5010008
10.3390/thermo5010008
Power and Energy Requirements for Carbon Capture and Sequestration
2,025
2025-03-02
journal-article
MDPI AG
Thermo
5
1
8
2673-7264
null
Efstathios E. Michaelides
1
Department of Engineering, Texas Christian University, Fort Worth, TX 76129, USA
10
60
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https://doi.org/10.3390/thermo5010008
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Carbon capture and sequestration have been recently presented as a viable option to reduce atmospheric carbon dioxide emissions and mitigate global climate change. The concept entails the capture, compression, transportation, and injection of the gas into a medium suitable for storage. This paper examines the thermodyn...
null
en
G6qprqZbD7XMLoddZ
ATUypp8JCOYgQSsPO
10.1017/9781009008877.012
10.1017/9781009008877.012
Direct Air Carbon Capture and Sequestration
2,022
2022-02-28
book-chapter
Cambridge University Press
Pandora's Toolbox
null
null
187-198
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9781009008877, 9781316518434, 9781009009225
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ATUypp8JCOYgQSsPO
10.1016/j.ccst.2026.100570
10.1016/j.ccst.2026.100570
Investigating carbon sequestration in cementitious mortars with low-carbon binders and carbonated water
2,026
2026-03
journal-article
Elsevier BV
Carbon Capture Science &amp; Technology
18
null
100570
2772-6568
null
Aswathy Rajendran, Sripriya Rengaraju, Abir Al-Tabbaa
3
null
0
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Engineering and Physical Sciences Research Council
10.13039/501100000266
https://doi.org/10.1016/j.ccst.2026.100570
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G6qprqZbD7XMLoddZ
ATUypp8JCOYgQSsPO
10.5772/intechopen.79082
10.5772/intechopen.79082
CO2 Miscible Flooding for Enhanced Oil Recovery
2,018
2018-09-12
book-chapter
InTech
Carbon Capture, Utilization and Sequestration
null
null
null
null
9781789237641, 9781789237658
Abdelaziz Nasr El-hoshoudy, Saad Desouky
2
null
22
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ATUypp8JCOYgQSsPO
10.1016/j.fuel.2017.11.106
10.1016/j.fuel.2017.11.106
Chemical looping partial oxidation of methane with CO2 utilization on the ceria-enhanced mesoporous Fe2O3 oxygen carrier
2,018
2018-03
journal-article
Elsevier BV
Fuel
215
null
787-798
0016-2361
null
Dohyung Kang, Minbeom Lee, Hyun Suk Lim, Jae W. Lee
4
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87
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Korea Carbon Capture and Sequestration R and D Center, Korea Carbon Capture and Sequestration R and D Center
10.13039/501100010239, 10.13039/501100010239
https://doi.org/10.1016/j.fuel.2017.11.106
null
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G6qprqZbD7XMLoddZ
ATUypp8JCOYgQSsPO
10.5772/intechopen.105949
10.5772/intechopen.105949
Carbon Capture, Use and Storage (CCUS) as Enhanced Oil Recovery (EOR): Llanos Orientales Basin (Colombia)
2,022
2022-09-28
book-chapter
IntechOpen
Carbon Sequestration
null
null
null
null
9781803556871, 9781803556888
Jorge Eliecer Mariño Martínez, Luisa Epimenia Moreno Reyes
2
null
0
13
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https://doi.org/10.5772/intechopen.105949
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At present, it is essential to take actions to minimize CO2 emissions into the atmosphere, and one way to use and exploit it is through the use of carbon dioxide for industry processes, such as enhanced oil recovery. By carrying out carbon capture, geological storage and improving oil recovery by applying the selection...
null
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G6qprqZbD7XMLoddZ
ATUypp8JCOYgQSsPO
10.5772/intechopen.78386
10.5772/intechopen.78386
Geophysical Monitoring of CO2 Injection at Citronelle Field, Alabama
2,018
2018-09-12
book-chapter
InTech
Carbon Capture, Utilization and Sequestration
null
null
null
null
9781789237641, 9781789237658
Shen-En Chen, Yangguang Liu
2
null
0
30
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null
null
https://doi.org/10.5772/intechopen.78386
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ATUypp8JCOYgQSsPO
10.1007/978-981-16-0029-6_2
10.1007/978-981-16-0029-6_2
Carbon Capture and Sequestration: Implications and Opportunities for India
2,021
2021
book-chapter
Springer Singapore
Green Energy and Technology
null
null
19-25
1865-3529, 1865-3537
9789811600289, 9789811600296
Anjan Ray
1
null
4
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https://doi.org/10.1007/978-981-16-0029-6_2
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ATUypp8JCOYgQSsPO
10.1002/9781119510079.ch16
10.1002/9781119510079.ch16
Potential Evaluation Method of Carbon Dioxide Flooding and Sequestration
2,019
2019-05-20
other
Wiley
The Three Sisters
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311-331
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9781119510062, 9781119510079
Yongle Hu, Mingqiang Hao, Chao Wang, Xinwei Liao, Lina Song
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ATUypp8JCOYgQSsPO
10.1016/j.ccst.2025.100511
10.1016/j.ccst.2025.100511
Accelerating CO2 sequestration in cementitious materials using carbonic anhydrase: Experimental insights into performance and mechanisms
2,025
2025-12
journal-article
Elsevier BV
Carbon Capture Science &amp; Technology
17
null
100511
2772-6568
null
Xiulin Chen, Zhidong Zhang, Ueli Angst
3
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0
105
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ETH Zurich
10.13039/501100003006
https://doi.org/10.1016/j.ccst.2025.100511
null
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G6qprqZbD7XMLoddZ
ATUypp8JCOYgQSsPO
10.3390/en12091603
10.3390/en12091603
Optimization of the Energy Consumption of a Carbon Capture and Sequestration Related Carbon Dioxide Compression Processes
2,019
2019-04-26
journal-article
MDPI AG
Energies
12
9
1603
1996-1073
null
Steven Jackson, Eivind Brodal
2
Instituttet for ingeniørvitenskap og sikkerhet IVT, UiT Norges Arktiske Universitet, 9019 Tromsø, Norway
46
22
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https://doi.org/10.3390/en12091603
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It is likely that the future availability of energy from fossil fuels, such as natural gas, will be influenced by how efficiently the associated CO2 emissions can be mitigated using carbon capture and sequestration (CCS). In turn, understanding how CCS affects the efficient recovery of energy from fossil fuel reserves ...
null
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G6qprqZbD7XMLoddZ
ATUypp8JCOYgQSsPO
10.1515/ci-2024-0219
10.1515/ci-2024-0219
Advanced Technologies for Carbon Sequestration and Capture
2,024
2024-04-01
journal-article
Walter de Gruyter GmbH
Chemistry International
46
2
33-34
1365-2192, 0193-6484
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https://doi.org/10.1515/ci-2024-0219
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ATUypp8JCOYgQSsPO
10.1016/b978-0-12-819455-3.00007-8
10.1016/b978-0-12-819455-3.00007-8
Membrane-based technology for carbon dioxide capture and sequestration
2,020
2020
book-chapter
Elsevier
Membrane-Based Technologies for Environmental Pollution Control
null
null
359-368
null
9780128194553
Parimal Pal
1
null
1
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https://www.elsevier.com/tdm/userlicense/1.0/
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https://doi.org/10.1016/b978-0-12-819455-3.00007-8
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ATUypp8JCOYgQSsPO
10.1002/9781119510079.fmatter
10.1002/9781119510079.fmatter
Front Matter
2,019
2019-05-20
other
Wiley
The Three Sisters
null
null
null
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9781119510062, 9781119510079
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Korea Polar Research Institute, Korea Carbon Capture and Sequestration R and D Center, Korea Carbon Capture and Sequestration R and D Center, National Science Foundation, UBC | Faculty of Graduate Studies, University of British Columbia, Gouvernement du Canada | Natural Sciences and Engineering Research Council of Cana...
10.13039/501100004230, 10.13039/501100010239, 10.13039/501100010239, 10.13039/100000001, 10.13039/501100000187, 10.13039/501100000038, 10.13039/501100010239
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AbstractMost sexual organisms inherit organelles from one parent, commonly by excluding organelles from the smaller gametes. However, post-mating elimination of organelles derived from one gamete ensures uniparental inheritance, where the underlying mechanisms to distinguish organelles by their origin remain obscure. M...
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