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import asyncio
import hashlib
import logging
import re
import secrets
import time
from dataclasses import dataclass, field
from typing import Any, Literal
from urllib.parse import urlparse
import httpx
from app.schemas.visual_lesson import (
EvidenceClaim,
EvidenceSource,
MolecularResolutionCandidate,
NucleicFeature,
NucleicFormParameters,
NucleobaseAtom,
NucleobaseBond,
NucleobaseMolecule,
NucleicStructure,
ProteinChain,
VisualizationRequest,
)
from app.services.visual_lesson_store import VisualLessonStore
PDB_RE = re.compile(r"(?i)(?:\bPDB\s*[:#]?\s*|\b)(?=[0-9A-Za-z]{4}\b)(?=[0-9A-Za-z]*[A-Za-z])([0-9][A-Za-z0-9]{3})\b")
SEQUENCE_RE = re.compile(r"(?i)(?<![A-Z])([ACGTU]{6,60})(?![A-Z])")
EXPLICIT_SEQUENCE_RE = re.compile(r"(?i)\b(?:sequence|seq)\s*[:=]?\s*([A-Z]{4,})\b")
DNA_ALPHABET = set("ACGTRYSWKMBDHVN")
RNA_ALPHABET = set("ACGURYSWKMBDHVN")
DNA_COMPLEMENT = str.maketrans("ACGTRYSWKMBDHVN", "TGCAYRSWMKVHDBN")
RNA_COMPLEMENT = str.maketrans("ACGURYSWKMBDHVN", "UGCAYRSWMKVHDBN")
ILLUSTRATIVE_DNA = "ATGCCGTAACGT"
ILLUSTRATIVE_RNA = "AUGCCGUAACGU"
ALLOWED_STRUCTURE_HOSTS = {"models.rcsb.org", "files.rcsb.org"}
MAX_COORDINATE_BYTES = 50 * 1024 * 1024
NUCLEOBASES = {
"adenine": ("A", "C5H5N5"),
"cytosine": ("C", "C4H5N3O"),
"guanine": ("G", "C5H5N5O"),
"thymine": ("T", "C5H6N2O2"),
"uracil": ("U", "C4H4N2O2"),
}
NUCLEOBASE_ROLES = {
"A": "Adenine pairs with thymine through two hydrogen bonds in canonical DNA base pairing.",
"C": "Cytosine pairs with guanine through three hydrogen bonds in canonical DNA base pairing.",
"G": "Guanine pairs with cytosine through three hydrogen bonds in canonical DNA base pairing.",
"T": "Thymine pairs with adenine through two hydrogen bonds in canonical DNA base pairing.",
"U": "Uracil pairs with adenine through two hydrogen bonds in canonical RNA base pairing.",
}
ELEMENT_SYMBOLS = {1: "H", 6: "C", 7: "N", 8: "O", 15: "P", 16: "S"}
logger = logging.getLogger(__name__)
FORM_PARAMETERS = {
"a_dna": NucleicFormParameters(form="a_dna", handedness="right", bases_per_turn=11.0, rise_angstrom=2.6, radius_angstrom=11.5, strand_offset_degrees=132.0),
"b_dna": NucleicFormParameters(form="b_dna", handedness="right", bases_per_turn=10.5, rise_angstrom=3.4, radius_angstrom=10.0, strand_offset_degrees=144.0),
"z_dna": NucleicFormParameters(form="z_dna", handedness="left", bases_per_turn=12.0, rise_angstrom=3.7, radius_angstrom=9.0, strand_offset_degrees=150.0),
"rna": NucleicFormParameters(form="rna", handedness="right", bases_per_turn=11.0, rise_angstrom=2.8, radius_angstrom=11.0, strand_offset_degrees=130.0),
}
class NucleicResolutionError(RuntimeError):
def __init__(self, code: str, message: str) -> None:
super().__init__(message)
self.code = code
@dataclass
class NucleicIntent:
mode: Literal["concept", "sequence", "comparison", "structure"]
molecule: Literal["dna", "rna", "dna_rna", "dna_forms"]
sequence: str
complement: str
sequence_is_illustrative: bool
forms: list[NucleicFormParameters]
focus_base: str | None = None
assumptions: list[str] = field(default_factory=list)
@dataclass
class ResolvedNucleic:
intent: NucleicIntent
structure: NucleicStructure | None
features: list[NucleicFeature]
sources: list[EvidenceSource]
claims: list[EvidenceClaim]
nucleobase_molecule: NucleobaseMolecule | None = None
warnings: list[str] = field(default_factory=list)
class NucleicResolver:
def __init__(self, store: VisualLessonStore | None = None, client: httpx.AsyncClient | None = None) -> None:
self.store = store or VisualLessonStore()
self._client = client
@staticmethod
def parse_intent(request: VisualizationRequest) -> NucleicIntent:
text = f"{request.prompt} {request.selection_text}".upper()
explicit_sequence = EXPLICIT_SEQUENCE_RE.search(text)
sequence_match = explicit_sequence or SEQUENCE_RE.search(text)
sequence = sequence_match.group(1).upper() if sequence_match else ""
if len(sequence) > 60:
raise NucleicResolutionError("sequence_too_long", "Sequence visualization supports at most 60 nucleotides.")
if "T" in sequence and "U" in sequence:
raise NucleicResolutionError("mixed_nucleic_alphabet", "A sequence cannot mix DNA thymine (T) and RNA uracil (U).")
is_rna = "RNA" in text or "U" in sequence
if sequence and not set(sequence) <= (RNA_ALPHABET if is_rna else DNA_ALPHABET):
raise NucleicResolutionError("invalid_nucleic_sequence", "The sequence contains unsupported IUPAC nucleotide symbols.")
compare_rna = ("DNA" in text and "RNA" in text) or "DNA VS RNA" in text or "DNA VERSUS RNA" in text
compare_forms = (
"DNA" in text
and any(term in text for term in ("COMPARE", "FORM"))
and all(any(token in text for token in (f"{letter}-DNA", f"{letter}-", f"{letter} DNA")) for letter in ("A", "B", "Z"))
)
chemistry = any(term in text for term in ("CHEMISTRY", "CHEMICAL", "NUCLEOTIDE", "ATOM", "BOND"))
named_base = next((name for name in NUCLEOBASES if name.upper() in text), "")
if compare_forms:
molecule, mode, forms = "dna_forms", "comparison", [FORM_PARAMETERS["a_dna"], FORM_PARAMETERS["b_dna"], FORM_PARAMETERS["z_dna"]]
elif compare_rna:
molecule, mode, forms = "dna_rna", "comparison", [FORM_PARAMETERS["b_dna"], FORM_PARAMETERS["rna"]]
else:
molecule = "rna" if is_rna else "dna"
mode = "sequence" if sequence else "concept"
forms = [FORM_PARAMETERS["rna" if is_rna else "b_dna"]]
illustrative = not sequence
if not sequence:
sequence = ILLUSTRATIVE_DNA if compare_rna else (ILLUSTRATIVE_RNA if is_rna else ILLUSTRATIVE_DNA)
complement = sequence.translate(RNA_COMPLEMENT if molecule == "rna" else DNA_COMPLEMENT)
assumptions = (
["The PubChem conformer supplies molecular connectivity and coordinates; atom radii, colors, labels, and lighting are display conventions."]
if named_base
else ["The parametric helix is illustrative geometry, not an atomistic coordinate model."]
)
if molecule == "rna":
complement = ""
assumptions.append("No RNA fold is inferred from sequence; the strand shape is illustrative.")
if chemistry and not named_base:
assumptions.append("Chemical structures are schematic 2D formulas; official coordinates are required for an atomistic 3D view.")
return NucleicIntent(
mode=mode,
molecule=molecule,
sequence=sequence,
complement=complement,
sequence_is_illustrative=illustrative,
forms=forms,
focus_base=NUCLEOBASES[named_base][0] if named_base else None,
assumptions=assumptions,
)
async def _json(self, url: str) -> Any:
owns = self._client is None
client = self._client or httpx.AsyncClient(timeout=15.0, follow_redirects=False)
try:
response = await client.get(url, headers={"Accept": "application/json"})
if response.status_code == 404:
raise NucleicResolutionError("identifier_not_found", "The requested PDB structure was not found.")
response.raise_for_status()
return response.json()
except NucleicResolutionError:
raise
except Exception as exc:
raise NucleicResolutionError("official_database_unavailable", f"Official molecular metadata could not be retrieved: {exc}") from exc
finally:
if owns:
await client.aclose()
async def _coordinates(self, url: str) -> bytes:
parsed = urlparse(url)
if parsed.scheme != "https" or parsed.hostname not in ALLOWED_STRUCTURE_HOSTS:
raise NucleicResolutionError("unsafe_structure_url", "The coordinate host is not allowed.")
owns = self._client is None
client = self._client or httpx.AsyncClient(timeout=30.0, follow_redirects=False)
try:
async with client.stream("GET", url, headers={"Accept": "application/octet-stream"}) as response:
response.raise_for_status()
if int(response.headers.get("content-length") or 0) > MAX_COORDINATE_BYTES:
raise NucleicResolutionError("invalid_structure", "The coordinate file exceeds 50 MB.")
data = bytearray()
async for chunk in response.aiter_bytes():
data.extend(chunk)
if len(data) > MAX_COORDINATE_BYTES:
raise NucleicResolutionError("invalid_structure", "The coordinate file exceeds 50 MB.")
if len(data) < 64 or b"<html" in bytes(data[:512]).lower():
raise NucleicResolutionError("invalid_structure", "The official source returned invalid coordinates.")
return bytes(data)
except NucleicResolutionError:
raise
except Exception as exc:
raise NucleicResolutionError("structure_download_failed", f"The coordinate file could not be downloaded: {exc}") from exc
finally:
if owns:
await client.aclose()
async def classify_pdb(self, pdb_id: str) -> tuple[bool, bool, dict[str, Any], list[tuple[str, dict[str, Any]]]]:
pdb_id = pdb_id.upper()
entry = await self._json(f"https://data.rcsb.org/rest/v1/core/entry/{pdb_id}")
ids = (entry.get("rcsb_entry_container_identifiers") or {}).get("polymer_entity_ids") or []
rows = await asyncio.gather(*(self._json(f"https://data.rcsb.org/rest/v1/core/polymer_entity/{pdb_id}/{entity_id}") for entity_id in ids))
entities = [(str(entity_id), row) for entity_id, row in zip(ids, rows)]
kinds = [f"{(row.get('entity_poly') or {}).get('rcsb_entity_polymer_type', '')} {(row.get('entity_poly') or {}).get('type', '')}".lower() for _, row in entities]
has_protein = any("protein" in kind or "polypeptide" in kind for kind in kinds)
has_nucleic = any(any(term in kind for term in ("dna", "rna", "ribonucleotide", "deoxyribonucleotide")) for kind in kinds)
return has_protein, has_nucleic, entry, entities
async def _pubchem_nucleobase(self, name: str) -> NucleobaseMolecule:
logger.info("PubChem nucleobase resolution start name=%s", name)
payload = await self._json(
f"https://pubchem.ncbi.nlm.nih.gov/rest/pug/compound/name/{name}/JSON?record_type=3d"
)
compound = (payload.get("PC_Compounds") or [None])[0]
if not isinstance(compound, dict):
raise NucleicResolutionError("small_molecule_unavailable", f"PubChem returned no 3D conformer for {name}.")
atom_block = compound.get("atoms") or {}
coordinate_block = (compound.get("coords") or [None])[0] or {}
conformer = (coordinate_block.get("conformers") or [None])[0] or {}
atom_ids = list(atom_block.get("aid") or [])
atomic_numbers = list(atom_block.get("element") or [])
coordinate_ids = list(coordinate_block.get("aid") or [])
xs, ys, zs = list(conformer.get("x") or []), list(conformer.get("y") or []), list(conformer.get("z") or [])
coordinate_index = {int(atom_id): index for index, atom_id in enumerate(coordinate_ids)}
atoms: list[NucleobaseAtom] = []
for atom_id, atomic_number in zip(atom_ids, atomic_numbers):
index = coordinate_index.get(int(atom_id), -1)
element = ELEMENT_SYMBOLS.get(int(atomic_number))
if index < 0 or element is None or index >= len(xs) or index >= len(ys) or index >= len(zs):
continue
atoms.append(NucleobaseAtom(atom_id=int(atom_id), element=element, x=float(xs[index]), y=float(ys[index]), z=float(zs[index])))
bonds_block = compound.get("bonds") or {}
bonds = [
NucleobaseBond(atom_a=int(atom_a), atom_b=int(atom_b), order=int(order))
for atom_a, atom_b, order in zip(
bonds_block.get("aid1") or [], bonds_block.get("aid2") or [], bonds_block.get("order") or []
)
]
if not atoms or not bonds or len(atoms) > 64:
raise NucleicResolutionError("small_molecule_unavailable", f"PubChem returned incomplete 3D data for {name}.")
symbol, formula = NUCLEOBASES[name]
cid = int(((compound.get("id") or {}).get("id") or {}).get("cid") or 0)
molecule = NucleobaseMolecule(
name=name,
symbol=symbol,
molecular_formula=formula,
pubchem_cid=cid,
source_url=f"https://pubchem.ncbi.nlm.nih.gov/compound/{cid}",
atoms=atoms,
bonds=bonds,
)
logger.info(
"PubChem nucleobase resolution done name=%s cid=%d atoms=%d bonds=%d",
name,
molecule.pubchem_cid,
len(molecule.atoms),
len(molecule.bonds),
)
return molecule
async def resolve(self, project_id: str, request: VisualizationRequest, sources: list[EvidenceSource], claims: list[EvidenceClaim], scope: str = "nucleic_acid") -> ResolvedNucleic:
pdb_match = PDB_RE.search(f"{request.prompt} {request.selection_text}")
if not pdb_match:
intent = self.parse_intent(request)
molecule = None
warnings: list[str] = []
if intent.focus_base:
name = next(name for name, (symbol, _) in NUCLEOBASES.items() if symbol == intent.focus_base)
claims.append(EvidenceClaim(
claim_id="nucleobase-role",
text=NUCLEOBASE_ROLES[intent.focus_base],
claim_type="standard_definition",
support_level="canonical",
source_ids=["builtin:nucleic-chemistry"],
))
try:
molecule = await self._pubchem_nucleobase(name)
source_id = f"pubchem:{molecule.pubchem_cid}"
sources.append(EvidenceSource(
source_id=source_id,
origin="database",
title=f"PubChem Compound {molecule.pubchem_cid}: {name}",
url=molecule.source_url,
excerpt=f"PubChem 3D conformer and molecular graph for {name} ({molecule.molecular_formula}).",
authority="official",
))
claims.append(EvidenceClaim(
claim_id="nucleobase-structure",
text=(
f"The displayed {name} molecular graph and computed 3D conformer come from "
f"PubChem CID {molecule.pubchem_cid}."
),
claim_type="source_fact",
support_level="direct",
source_ids=[source_id],
))
claims.append(EvidenceClaim(
claim_id="nucleobase-representation",
text=(
"Atom sizes, element colors, labels, lighting, and bond-cylinder spacing are "
"illustrative display choices; they are not measured atomic radii or electron density."
),
claim_type="illustrative_choice",
support_level="illustrative",
source_ids=[],
))
except NucleicResolutionError as exc:
warnings.append(f"Official 3D nucleobase data was unavailable ({exc}); the chemistry schematic remains available.")
return ResolvedNucleic(
intent=intent,
structure=None,
features=self._generic_features(intent),
sources=sources,
claims=claims,
nucleobase_molecule=molecule,
warnings=warnings,
)
pdb_id = pdb_match.group(1).upper()
has_protein, has_nucleic, entry, entities = await self.classify_pdb(pdb_id)
if not has_nucleic and scope != "whole_assembly":
raise NucleicResolutionError("unsupported_biomolecule", f"PDB {pdb_id} does not contain a DNA or RNA polymer.")
nucleic_entities = []
for entity_id, row in entities:
kind = f"{(row.get('entity_poly') or {}).get('rcsb_entity_polymer_type', '')} {(row.get('entity_poly') or {}).get('type', '')}".lower()
if scope == "whole_assembly" or any(term in kind for term in ("dna", "rna", "ribonucleotide", "deoxyribonucleotide")):
nucleic_entities.append((entity_id, row, kind))
coordinate_url = f"https://models.rcsb.org/{pdb_id.lower()}.bcif"
coordinate_bytes = await self._coordinates(coordinate_url)
asset_id = self.store.save_asset(project_id, coordinate_bytes, "bcif")
chains: list[ProteinChain] = []
polymer_types: list[str] = []
features: list[NucleicFeature] = []
for entity_id, row, kind in nucleic_entities:
container = row.get("rcsb_polymer_entity_container_identifiers") or {}
description = str((row.get("rcsb_polymer_entity") or {}).get("pdbx_description") or f"Polymer entity {entity_id}")
asym_ids = list(container.get("asym_ids") or [])
auth_ids = list(container.get("auth_asym_ids") or [])
length = int((row.get("entity_poly") or {}).get("rcsb_sample_sequence_length") or 0)
sequence = re.sub(r"[^ACGTU]", "", str((row.get("entity_poly") or {}).get("pdbx_seq_one_letter_code_can") or "").upper())
polymer_types.append(kind.strip())
for index, chain_id in enumerate(asym_ids):
auth_id = str(auth_ids[index] if index < len(auth_ids) else chain_id)
chains.append(ProteinChain(chain_id=str(chain_id), auth_chain_id=auth_id, entity_id=entity_id, description=description, sequence_length=length))
features.append(NucleicFeature(
feature_id=f"chain:{chain_id}", kind="chain", label=f"Chain {auth_id}", color="#315E8A",
claim_ids=["nucleic-structure-chains"], chain_id=str(chain_id),
))
features.extend(
NucleicFeature(
feature_id=f"base:{chain_id}:{position}", kind="base", label=f"{base}{position}",
color={"A": "#59B88A", "T": "#E56F9A", "U": "#E56F9A", "G": "#C566E5", "C": "#7482EA"}.get(base, "#8D9BAA"),
claim_ids=["nucleic-structure-bases"], chain_id=str(chain_id), start=position, end=position, comp_id=base,
)
for position, base in enumerate(sequence[:60], start=1)
)
identifiers = entry.get("rcsb_entry_container_identifiers") or {}
resolution_values = (entry.get("rcsb_entry_info") or {}).get("resolution_combined") or []
method = str(((entry.get("exptl") or [{}])[0]).get("method") or "")
title = str((entry.get("struct") or {}).get("title") or f"PDB {pdb_id}")
structure = NucleicStructure(
pdb_id=pdb_id,
assembly_id=str((identifiers.get("assembly_ids") or [""])[0]),
title=title,
coordinate_asset_id=asset_id,
coordinate_sha256=hashlib.sha256(coordinate_bytes).hexdigest(),
coordinate_format="bcif",
source_url=coordinate_url,
experimental_method=method,
resolution_angstrom=float(resolution_values[0]) if resolution_values else 0.0,
polymer_types=polymer_types,
chains=chains,
)
source_id = f"rcsb:{pdb_id}"
sources.append(EvidenceSource(
source_id=source_id, origin="database", title=f"RCSB PDB {pdb_id}",
url=f"https://www.rcsb.org/structure/{pdb_id}", excerpt=f"{title}; {method or 'method not reported'}.", authority="official",
))
claims.extend([
EvidenceClaim(claim_id="nucleic-structure-provenance", text=f"{pdb_id} is an archived experimental molecular structure.", claim_type="source_fact", support_level="direct", source_ids=[source_id]),
EvidenceClaim(claim_id="nucleic-structure-chains", text=f"The selected structure view contains {len(chains)} resolved polymer chain instance(s).", claim_type="source_fact", support_level="direct", source_ids=[source_id]),
EvidenceClaim(claim_id="nucleic-structure-bases", text="Displayed nucleotide selectors follow the archived polymer sequence and label numbering.", claim_type="source_fact", support_level="direct", source_ids=[source_id]),
])
intent = NucleicIntent(mode="structure", molecule="dna" if not any("rna" in kind and "dna" not in kind for kind in polymer_types) else "rna", sequence="", complement="", sequence_is_illustrative=False, forms=[])
warnings = ["This view includes the whole molecular assembly." ] if scope == "whole_assembly" and has_protein else []
return ResolvedNucleic(
intent=intent,
structure=structure,
features=features,
sources=sources,
claims=claims,
warnings=warnings,
)
@staticmethod
def _generic_features(intent: NucleicIntent) -> list[NucleicFeature]:
if intent.focus_base:
return []
claim = ["nucleic-backbone"]
features = [
NucleicFeature(feature_id="backbone", kind="backbone", label="Sugar–phosphate backbone", color="#D7A642", claim_ids=claim),
NucleicFeature(feature_id="direction-5", kind="direction", label="5′ end", color="#1A3557", claim_ids=claim),
NucleicFeature(feature_id="direction-3", kind="direction", label="3′ end", color="#1A3557", claim_ids=claim),
NucleicFeature(feature_id="sugar", kind="sugar", label="Ribose" if intent.molecule == "rna" else "Deoxyribose", color="#D7A642", claim_ids=claim),
NucleicFeature(feature_id="phosphate", kind="phosphate", label="Phosphate", color="#315E8A", claim_ids=claim),
]
if intent.complement:
features.extend([
NucleicFeature(feature_id="base-pair", kind="base_pair", label="Complementary base pair", color="#59B88A", claim_ids=["nucleic-pairing"]),
NucleicFeature(feature_id="hydrogen-bond", kind="hydrogen_bond", label="Hydrogen bonds", color="#8D9BAA", claim_ids=["nucleic-pairing"]),
NucleicFeature(feature_id="major-groove", kind="major_groove", label="Major groove", color="#7A5AA6", claim_ids=["nucleic-forms"]),
NucleicFeature(feature_id="minor-groove", kind="minor_groove", label="Minor groove", color="#4A7FB5", claim_ids=["nucleic-forms"]),
])
return features
class PendingMolecularResolutions:
def __init__(self) -> None:
self._items: dict[str, tuple[float, VisualizationRequest, list[EvidenceSource], list[EvidenceClaim], list[MolecularResolutionCandidate]]] = {}
def create(self, request: VisualizationRequest, sources: list[EvidenceSource], claims: list[EvidenceClaim], candidates: list[MolecularResolutionCandidate]) -> str:
self._purge()
token = f"molecular_{secrets.token_urlsafe(24)}"
self._items[token] = (time.time() + 600, request, sources, claims, candidates)
return token
def consume(self, token: str, candidate_id: str) -> tuple[VisualizationRequest, list[EvidenceSource], list[EvidenceClaim], MolecularResolutionCandidate]:
self._purge()
item = self._items.pop(token, None)
if not item:
raise NucleicResolutionError("resolution_expired", "The molecular structure choice expired. Run the visualization again.")
_, request, sources, claims, candidates = item
candidate = next((value for value in candidates if value.candidate_id == candidate_id), None)
if not candidate:
raise NucleicResolutionError("invalid_resolution_choice", "The molecular structure choice is no longer available.")
return request, sources, claims, candidate
def _purge(self) -> None:
now = time.time()
self._items = {key: value for key, value in self._items.items() if value[0] > now}
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