| name | restriction-sites |
| description | Find restriction enzyme cut sites in DNA sequences using Biopython Bio.Restriction. Search with single enzymes, batches of enzymes, or commercially available enzyme sets. Returns cut positions for linear or circular DNA. Use when finding restriction enzyme cut sites in sequences. |
| tool_type | python |
| primary_tool | Bio.Restriction |
Version Compatibility
Reference examples tested with: BioPython 1.83+
Before using code patterns, verify installed versions match. If versions differ:
- Python:
pip show <package> then help(module.function) to check signatures
If code throws ImportError, AttributeError, or TypeError, introspect the installed
package and adapt the example to match the actual API rather than retrying.
Finding Restriction Sites
"Find restriction sites in my DNA sequence" -> Locate cut positions for one or more restriction enzymes in linear or circular DNA.
- Python:
Bio.Restriction.Analysis(rb, seq, linear=True).full()
Core Pattern
from Bio import SeqIO
from Bio.Restriction import EcoRI, BamHI, HindIII, RestrictionBatch, Analysis
record = SeqIO.read('sequence.fasta', 'fasta')
seq = record.seq
sites = EcoRI.search(seq)
Search with Single Enzyme
from Bio.Restriction import EcoRI
sites = EcoRI.search(seq)
print(f'EcoRI cuts at positions: {sites}')
print(f'Number of sites: {len(sites)}')
if EcoRI.search(seq):
print('EcoRI cuts this sequence')
else:
print('EcoRI does not cut')
Search with Multiple Enzymes
from Bio.Restriction import RestrictionBatch, EcoRI, BamHI, HindIII, XhoI
batch = RestrictionBatch([EcoRI, BamHI, HindIII, XhoI])
results = batch.search(seq)
for enzyme, sites in results.items():
if sites:
print(f'{enzyme}: {sites}')
analysis = Analysis(batch, seq)
results = analysis.full()
Use Built-in Enzyme Collections
from Bio.Restriction import AllEnzymes, CommOnly
analysis = Analysis(AllEnzymes, seq)
analysis = Analysis(CommOnly, seq)
results = analysis.full()
for enzyme, sites in results.items():
if sites:
print(f'{enzyme}: {sites}')
Linear vs Circular DNA
from Bio.Restriction import EcoRI, Analysis, RestrictionBatch
sites_linear = EcoRI.search(seq, linear=True)
sites_circular = EcoRI.search(seq, linear=False)
batch = RestrictionBatch([EcoRI, BamHI])
analysis = Analysis(batch, seq, linear=False)
Filter Results
from Bio.Restriction import Analysis, CommOnly
analysis = Analysis(CommOnly, seq)
analysis.print_that_cut()
analysis.print_that_dont_cut()
analysis.print_once_cutters()
analysis.print_twice_cutters()
cutters = analysis.only_cut()
non_cutters = analysis.only_dont_cut()
once_cutters = analysis.once_cutters()
twice_cutters = analysis.twice_cutters()
Get Enzyme Information
from Bio.Restriction import EcoRI
print(f'Site: {EcoRI.site}')
print(f'Esite: {EcoRI.esite}')
print(f'Overhang: {EcoRI.ovhg}')
print(f'Blunt: {EcoRI.is_blunt()}')
print(f'5\' overhang: {EcoRI.is_5overhang()}')
print(f'3\' overhang: {EcoRI.is_3overhang()}')
print(f'Overhang seq: {EcoRI.ovhgseq}')
print(f'Isoschizomers: {EcoRI.isoschizomers()}')
print(f'Compatible: {EcoRI.compatible_end()}')
Common Cloning Enzymes
from Bio.Restriction import (
EcoRI, BamHI, HindIII, XhoI, SalI, NotI, XbaI, SpeI,
NcoI, NdeI, BglII, PstI, KpnI, SacI, EcoRV, SmaI
)
common_enzymes = RestrictionBatch([
EcoRI, BamHI, HindIII, XhoI, SalI, NotI, XbaI,
NcoI, NdeI, BglII, PstI, KpnI, SacI, EcoRV, SmaI
])
analysis = Analysis(common_enzymes, seq)
results = analysis.full()
Access Enzymes by Name
from Bio.Restriction import AllEnzymes
ecori = AllEnzymes.get('EcoRI')
sites = ecori.search(seq)
if 'EcoRI' in AllEnzymes:
print('EcoRI is in database')
Search Multiple Sequences
from Bio import SeqIO
from Bio.Restriction import RestrictionBatch, EcoRI, BamHI
batch = RestrictionBatch([EcoRI, BamHI])
for record in SeqIO.parse('sequences.fasta', 'fasta'):
analysis = Analysis(batch, record.seq)
results = analysis.full()
print(f'{record.id}:')
for enzyme, sites in results.items():
if sites:
print(f' {enzyme}: {sites}')
Notes
- Positions are 1-based - first base is position 1
- Cut position - where enzyme cuts (between bases)
- Linear default - set
linear=False for circular DNA
- Case insensitive - recognition matches regardless of case
- Ambiguous bases - some enzymes recognize N, R, Y, etc.
Related Skills
- restriction-mapping - Visualize cut positions on sequence
- enzyme-selection - Choose enzymes by criteria
- fragment-analysis - Analyze resulting fragments