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HDGF Biologics Sequence Review Report 2026: Hepatoma-derived growth factor Similarity and Patent-Risk Signals

18 August 2026
8 min read

PatSnap MCP servers used for the HDGF biologics sequence review

This HDGF Biologics Sequence Review Report was produced with PatSnap Biology Modality MCP workflows. It turns patent-scale sequence search, sequence retrieval, pairwise alignment and target evidence into a reproducible diligence narrative. Explore the PatSnap MCP servers used in this report.

Review date: 18 August 2026. This report supports R&D, competitive-intelligence and IP triage. It is not a legal opinion, freedom-to-operate conclusion or validity analysis. A sequence hit does not establish infringement, and a no-hit or low-hit result does not establish clearance.

Executive sequence-risk thesis

HDGF is a reviewed human protein asset represented by UniProt entry P51858. The reference sequence contains 240 amino acids and is annotated as Hepatoma-derived growth factor. PatSnap’s patent-scale screen returned 41 matching records in the configured result universe. The leading reviewed hit showed 100.00% query identity across 240/240, with the database claim annotation recorded as No.

The resulting screen is classified as moderate-to-elevated diligence priority. That label prioritizes diligence; it does not classify the asset as blocked, available or unique. Whole-protein identity can be driven by endogenous human sequence, conserved domains, common signal peptides or transmembrane regions. Patent relevance depends on whether live claims cover the complete sequence, a fragment, an engineered variant, an antibody recognizing the target, a use, or a functional genus.

Why this protein is a biologics-relevant review subject

Hepatoma-derived growth factor is a traceable secreted or extracellular human protein sequence suitable for systematic similarity screening. For biologics teams, the sequence can matter in several distinct ways: it may be the administered protein, an extracellular target, an antigen used to raise antibodies, a receptor domain incorporated into a fusion, or a reference against which engineered variants are defined. Those possibilities produce different patent questions even when they share the same gene symbol.

This report therefore separates sequence proximity from legal scope. A close patent-sequence match can identify families worth reading, yet naturally occurring human protein sequence is not itself a conclusion about enforceable rights. Conversely, engineered substitutions, truncations, Fc fusions, linkers, glycosylation-site changes, epitope-defined claims or nucleic-acid delivery constructs may be commercially important even when the full-length reference is not reproduced verbatim.

Biology Modality MCP evidence workflow

The workflow began with ls_sequence_search_submit against ALLPATENT protein records and used ls_sequence_search_get_results to retrieve the leading evidence. ls_sequence_fetch resolved the selected patent-sequence record, and ls_sequence_alignment performed a PSA comparison to the reviewed UniProt query. Finally, ls_antibody_antigen_search tested target-linked antibody evidence and ls_patent_sequence_fetch retrieved sequences from a resolved patent record where available.

Evidence stepHDGF resultInterpretive limit
Reference query240 aa; reviewed human UniProt P51858Reference protein may differ from a therapeutic construct or isoform.
Patent similarity41 records; leading identity 100.00%; coverage 240/240Records are not deduplicated patent families or live claims.
Sequence detailSequence 1197298697, 307 aaSequence annotations require specification-level confirmation.
PSA1 alignment block(s)Coordinates do not identify claim scope or biological function.
Target evidence21 antibody–antigen recordsAliases and research antibodies can affect counts.
Patent sequences23 associated sequencesListings can contain controls, fragments and unrelated examples.

Similarity-search readout

The leading result was evaluated under the primary screen using 70–100% identity and 80–100% query coverage. It reported 240/240 identical positions, query coverage 240/240, subject coverage 240/307, E-value 6.79391e-173 and 0/240 gaps. The database marked the record as No for the claim annotation field.

The primary result was obtained inside the predefined strict screening window. That improves reproducibility, but the window still excludes lower-identity functional analogues, short motifs, epitope-only claims, engineered constructs and nucleotide-level variants.

The raw count of 41 records should not be read as the number of independent inventions. One sequence can appear in applications, grants, continuations, divisionals and multiple jurisdictions. It can also recur as a reference, antigen, control or prior-art comparator. Family consolidation by earliest priority, applicant, simple family and legal status is therefore essential before ranking competitive risk.

Sequence fetch and pairwise alignment

ls_sequence_fetch resolved sequence number 1197298697 with a length of 307 aa, annotated “Hepatoma-derived growth factor patent-sequence record”. The fetched record was then supplied to ls_sequence_alignment for pairwise comparison with the reviewed HDGF sequence.

The PSA returned 1 alignment block(s). The first block covered query positions 1–240 and subject positions 68–307, with 240 identical residues and 0 gaps. Reviewers should map mismatches to extracellular domains, binding interfaces, cleavage sites, transmembrane regions and engineered junctions. A concentrated change at a functional interface can matter more than a similar number of substitutions distributed across a nonfunctional region.

PatSnap Biology Modality MCP workflow for HDGF sequence similarity and patent review

Antibody–antigen and patent-sequence evidence

The exact HDGF target query returned 21 antibody–antigen record(s). The leading evidence was linked to US11186632B2, “Methods of treating cancer using bifunctional molecules that target growth factors” and annotated for Homo sapiens. Heavy- and light-chain sequence lengths in that record were 597 and 233 amino acids, respectively.

ls_patent_sequence_fetch returned 23 associated sequence(s) from the leading resolved patent record. The first returned items should be checked against their SEQ ID numbers and their role in the specification because patent listings can mix antibodies, antigens, controls, fragments, primers and manufacturing elements.

Target-level evidence complements sequence similarity because biologics patents often define inventions through binding, epitope, function, disease use or combinations rather than an exact full-length target sequence. The strongest review links the returned sequence to a patent family, verifies the role of the sequence in the specification, and then reads live claims in the jurisdictions relevant to development or commercialization.

Patent-risk interpretation

DimensionScreening signalRequired next check
Sequence proximity100.00% leading query identityMap differences by domain, isoform and engineered construct.
Coverage240/240Determine whether the match is full-length, fragmentary or domain-specific.
Claim annotationNoVerify the sequence number against live independent and dependent claims.
Target evidence21 recordsSearch gene, protein-name, alias and pathway terminology.
Legal conclusionNot determinedReview priority, ownership, licensing, prosecution, validity and territory.

Diligence actions

  1. Confirm the exact therapeutic or experimental construct, including isoform, truncation, signal peptide, tags, linkers and fusion partners.
  2. Cluster high-ranking sequence records by patent family and earliest priority date rather than counting publications.
  3. Retrieve the underlying sequence listings and confirm the biological role of each selected sequence number.
  4. Map alignment differences to extracellular domains, binding interfaces, catalytic motifs and engineered junctions.
  5. Search HDGF, Hepatoma-derived growth factor and known aliases in target, antibody, claim and assignee contexts.
  6. Build jurisdiction-specific claim charts for live families and document licenses or collaboration rights.
  7. Rerun the Biology Modality MCP workflow at the transaction or development decision date because database and legal-status coverage changes.

Bottom line

HDGF produced a traceable sequence-search result with 100.00% leading identity, 240/240 query coverage, 1 PSA block(s), 21 target-linked antibody records and 23 directly fetched patent sequences. Together, these signals support moderate-to-elevated diligence priority and a prioritized family-and-claim review. They do not support a binary clearance or infringement statement.

Explore PatSnap MCP servers for HDGF 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 P51858. Patent-scale similarity, sequence detail, PSA, patent-sequence and antibody–antigen evidence was retrieved through PatSnap Biology Modality MCP on 18 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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