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MUSK Biologics Sequence Review Report 2026: Muscle, skeletal receptor tyrosine-protein kinase Similarity and Patent-Risk Signals

4 August 2026
8 min read

PatSnap MCP servers for the MUSK biologics sequence review

This MUSK Biologics Sequence Review Report was produced with PatSnap Biology Modality MCP. The workflow connects patent-scale sequence searching, result retrieval, full-sequence inspection, pairwise alignment and target-linked patent evidence in one reproducible screen. Explore the PatSnap MCP servers used in this report.

Review date: 4 August 2026. The query is the reviewed human Muscle, skeletal receptor tyrosine-protein kinase reference sequence, UniProt accession O15146, with a length of 869 amino acids. This report is an R&D and IP-triage resource, not a legal opinion, freedom-to-operate conclusion, infringement analysis or validity assessment.

Executive sequence-risk thesis

MUSK is a receptor topic centered on Muscle, skeletal receptor tyrosine-protein kinase. The ALLPATENT protein search returned 20 records within the configured task window. The selected review hit reached 100.00% query identity, 869/869 query coverage and 869/869 subject coverage; its database-level claimed flag was Yes.

The resulting screening position is elevated diligence priority, not “blocked” or “clear.” A high-identity record may reproduce a natural reference protein, an antigen construct, a diagnostic reagent, a control, an expression cassette or a therapeutic component. Conversely, relevant claims may cover variants, fragments, binding regions or percentage-identity genera without reproducing the complete reference sequence. Sequence similarity is therefore a prioritization signal that directs family and claim review.

How the Biology Modality MCP workflow was run

The reference protein was submitted with ls_sequence_search_submit as a PROTEIN-to-PROTEIN query against ALLPATENT, with gaps enabled, E-value at or below 0.001, identity from 30% to 100%, query coverage from 30% to 100% and a 20-record task limit. After status completion, ls_sequence_search_get_results retrieved the ranked evidence. The selected sequence number was resolved with ls_sequence_fetch, and ls_sequence_alignment ran a PSA comparison against the query.

Target context was tested with ls_antibody_antigen_search using both the gene symbol and recommended protein name when needed. When that step returned a target-linked patent number, ls_patent_sequence_fetch retrieved the corresponding patent sequence bundle. The six-tool design separates raw sequence proximity from target annotation and patent-document context, while preserving gaps when a direct target-linked record is unavailable.

Similarity search readout

RankSequence IDQuery identityQuery coverageClaimed flag
11335724748100.00%869/869No
2923109100.00%869/869Yes
3120826686196.89%842/869Yes

The selected subject sequence was 923109, with a reported length of 869 amino acids, score 1,803 and E-value 0. The comparison contained 0/869 gaps and mapped query positions 1–869 to subject positions 1–869. The returned organism annotation was Homo sapiens, synthetic construct, unidentified.

Search totals are records, not unique inventions, families or enforceable claims. The same sequence can be repeated across jurisdictions, continuations, examples and reference sections. A useful next step is to consolidate results by earliest priority, simple family, applicant and legal status, then distinguish sequences appearing in claims from those disclosed only in descriptions or sequence listings.

PatSnap Biology Modality MCP sequence and patent workflow for MUSK

Sequence fetch and pairwise alignment

ls_sequence_fetch resolved the selected record as sequence 923109, annotated “Kinase (phosphorylating), receptor protein tyrosine (human clone WO2011036291-SEQID-1)”, with a stored length of 869 amino acids. Associated gene annotation was MUSK, and the record was not marked as an antibody.

The PSA output aligned query positions 1–869 with target positions 1–869. This coordinate-level view is more useful than a percentage alone because it shows whether similarity spans the full reference, a domain, a signal peptide, a transmembrane region or another localized segment.

For diligence, mismatches and gaps should be mapped to functional domains, extracellular versus intracellular regions, cleavage sites, ligand-binding surfaces and construct boundaries. A complete natural-protein match can be highly relevant to antigen and replacement-protein patents, but its meaning differs from a partial intracellular-domain match or a short conserved motif. Domain context should therefore be reviewed before ranking families.

Antibody–antigen and patent-sequence evidence

The target search returned 350 antibody–antigen records. The leading evidence references MUSK in Homo sapiens and patent US20230151091A1. Heavy- and light-chain lengths in the retrieved records are preserved as contextual evidence, but antibody naming, species and sequence provenance still require manual review.

The target-linked antibody–antigen record identified US20230151091A1, “Therapeutic MUSK antibodies”. A follow-on ls_patent_sequence_fetch call returned 194 sequence records in the patent bundle. The first retrieved records span 7 aa, 7 aa, 17 aa, 5 aa, 17 aa. These records are evidence for document review, not proof that every sequence is claimed or clinically relevant.

What the claimed flag does—and does not—show

A “Yes” claimed flag raises review priority, but it is not a claim chart. The annotation must be checked against the filed document, the exact SEQ ID, the relevant independent and dependent claims, prosecution history and current legal status. Claims may be abandoned, narrowed, expired, territorially limited or directed to uses and combinations that do not read on a proposed asset.

A “No” or unspecified flag is equally not a clearance result. A family can claim a broader genus, a fragment, a functional binding property, a nucleic acid, a vector, a host cell, a method of treatment or a combination without labeling the exact protein sequence as claimed. The safest interpretation is to use the flag to order document review, never as a substitute for legal analysis.

Patent-risk interpretation

DimensionObserved signalNext diligence step
Reference sequence869 aa; UniProt O15146Confirm the reviewed reference matches the intended therapeutic, antigen or construct scope.
Closest search hit100.00%; 869/869 query coverageMap the aligned region to domains and consolidate patent families.
Claim annotationYesRead live claims and verify the cited sequence number.
Target evidence350 antibody–antigen recordsSearch aliases, therapeutic codes and antigen-domain names.
Patent bundle194 sequences retrievedSeparate claimed embodiments from examples, controls and reference material.

Recommended diligence actions

  1. Confirm the exact protein, isoform, mature chain, engineered variant and construct boundaries intended for development.
  2. Repeat searches for functional domains, extracellular regions, cleavage products and nucleic-acid sequences where relevant.
  3. Cluster high-similarity records by simple family, earliest priority, applicant, inventor and jurisdiction.
  4. Retrieve the source documents and verify every important sequence ID against the claims and sequence listing.
  5. Review live independent and dependent claims for sequence, identity-threshold, functional, use, combination and manufacturing scope.
  6. Record licenses, collaborations, platform rights and prosecution events that can change practical exposure.
  7. Rerun the Biology Modality workflow at each transaction or development decision date because database and legal-status coverage changes.

Bottom line

MUSK produced a traceable patent-scale similarity signal: 100.00% closest reviewed query identity, 869/869 query coverage, a Yes claimed annotation, 350 antibody–antigen records and 194 directly fetched target-linked patent sequences. Together these support elevated diligence priority. The defensible output is a prioritized, domain-aware patent-family and claim review—not a binary clearance statement.

Explore PatSnap MCP servers for MUSK biologics sequence intelligence

Explore PatSnap Open Platform MCP Servers to produce sequence similarity and patent-risk reports for antibodies, proteins, peptides and nucleic-acid assets.

Sources and methodology notes

Reference sequence metadata: reviewed human UniProt entry O15146. Patent-scale similarity, sequence-detail, PSA, patent-sequence and antibody–antigen evidence was retrieved through PatSnap Biology Modality MCP on 4 August 2026. Results are bounded by the configured query, thresholds, aliases, task limits and database coverage; rerun at the decision date.

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