Parse HELM strings into RDKit molecules
Project description
helmkit
A Python library for converting HELM (Hierarchical Editing Language for Macromolecules) notation to RDKit molecules.
Table of Contents
- Basic Usage
- Installation
- Quick Example
- Understanding HELM Notation
- Using Custom Monomer Data
- SDF File Structure Requirements
- Parallel Processing of Peptides
- Development Setup
- Running Tests
Basic Usage
from helmkit import Molecule
# Create a molecule from a HELM string
helm_string = "PEPTIDE1{A.R.G}$$$$"
molecule = Molecule(helm_string)
# Access the RDKit molecule object
rdkit_mol = molecule.mol
Installation
To install helmkit, you can use either uv or pip.
With uv
uv pip install helmkit
or if you have added it as a dependency to your pyproject.toml:
uv add helmkit
Without uv
pip install helmkit
Quick Example
from helmkit import Molecule
from rdkit.Chem import AllChem, Draw
# Create a simple tripeptide (Ala-Arg-Gly)
molecule = Molecule("PEPTIDE1{A.R.G}$$$$")
# Generate 2D coordinates for visualization
AllChem.Compute2DCoords(molecule.mol)
# Save the image
img = Draw.MolToImage(molecule.mol)
img.save("tripeptide.png")
Understanding HELM Notation
HELM (Hierarchical Editing Language for Macromolecules) is a notation for representing complex biomolecules. A basic HELM string has the following format:
PEPTIDE1{A.R.G}|PEPTIDE2{S.G.C}$PEPTIDE1,PEPTIDE2,1:R1-3:R3$$$V2.0
Where:
PEPTIDE1{A.R.G}defines the first chain (a peptide with amino acids A, R, G)PEPTIDE2{S.G.C}defines the second chainPEPTIDE1,PEPTIDE2,1:R1-3:R3defines a connection between the chains (R1 of residue 1 in PEPTIDE1 connects to R3 of residue 3 in PEPTIDE2)$characters separate different sections of the HELM string
Using Custom Monomer Data
By default, helmkit uses the monomer data in helmkit/data/monomers.sdf. To use a custom SDF file:
from helmkit import Molecule, load_monomer_library
# Load your custom monomer data
custom_sdf_path = "/path/to/your/custom_monomers.sdf"
custom_monomers = load_monomer_library(custom_sdf_path)
# Create molecule with custom monomer data
molecule = Molecule("PEPTIDE1{A.R.G}$$$$", monomer_df=custom_monomers)
SDF File Structure Requirements
The SDF file containing monomer data must have the following properties for each molecule:
Required Properties:
symbol: A unique identifier for the monomer (e.g., "A" for alanine)m_RgroupIdx: Comma-separated list of R-group atom indices (e.g., "1,2,None,None")
Optional Properties:
m_Rgroups: Comma-separated list of R-group types (e.g., "H,OH,None,None")m_type: Monomer type (e.g., "aa" for amino acid)m_subtype: Monomer subtypem_abbr: Monomer abbreviation
Example SDF Entry:
Your molecule atom data here...
...
> <symbol>
A
> <m_Rgroups>
H,OH,None,None
> <m_RgroupIdx>
1,2,None,None
> <m_type>
aa
> <m_subtype>
natural
> <m_abbr>
Ala
$$$$
Parallel Processing of Peptides
For workflows involving a large number of peptides, helmkit provides a function to process them in parallel, significantly improving performance.
from helmkit import load_monomer_library
from helmkit import load_peptides_in_parallel
# Load your custom monomer data (optional)
custom_sdf_path = "/path/to/your/custom_monomers.sdf"
monomer_db = load_monomer_library(custom_sdf_path)
# A list of HELM strings
helm_strings = ["PEPTIDE1{A.R.G}$$$$", "PEPTIDE1{S.G.T}$$$$"]
# Process peptides in parallel
molecules = load_peptides_in_parallel(helm_strings, monomer_db)
Development Setup
To set up a development environment, first clone the repository.
Then, from the root of the repository, use uv to sync the environment:
uv sync -U
Running Tests
To run the test suite, execute pytest from the root of the repository:
pytest
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