Component

Human serine dehydratase-like protein / SDSL

Context-specific entity; species, compartment and exposure are stated on each claim.

3 recorded relationships. Experimental role, claim status and evidence remain attached to each record.

How nutrients influence it

Every nutrient with a recorded effect on this component, credited to the nutrient that acted rather than the chapter that recorded it. Open a nutrient to see the findings and the conditions they were measured under.

How nutrients reach it in more than one step

Chains of two or more recorded steps that end here, grouped by the nutrient they start from. Each step is a separate finding, so a chain is a route a mechanism could take, not proof that it does.

Tracing routes…

What it does

Every recorded relationship this component is part of, grouped by its role. Plain wording comes first; the technical statement follows.

Recorded relationships

What it acts on

  1. Human serine dehydratase-like protein had lower activity than the hepatic enzyme; structures and complementary mutations implicated active-site differences, including Gly72.

    Experimental context and source evidence
    evidence_access
    Primary abstract
    experimental_model
    Recombinant human enzymes, 2.8-angstrom SDSL structure and site-directed mutagenesis.
    limitations
    This is a comparison of enzyme constructs, not clinical evidence of a dietary shortage.
    nutrient_topic
    L-Serine collection; species, compartment, exposure, co-substrates and manipulation remain explicit. · L-Serine
    plain_language
    Related enzymes are not interchangeable just because they use the same substrate.
    primary_references
    A catalytic mechanism that explains a low catalytic activity of serine dehydratase like-1 from human cancer cells: crystal structure and site-directed mutagenesis studies. · 2008 · https://pubmed.ncbi.nlm.nih.gov/18342636/ · DOI 10.1016/j.bbagen.2008.01.020

    L-Serine: synthesis, one-carbon metabolism, lipids and cross-nutrient mechanisms (2026-09-19) · lines 374–380

    AI-assisted research curation; primary references, access levels and experimental limitations individually identified. Not publisher full text. · supports · Recombinant human enzymes, 2.8-angstrom SDSL structure and site-directed mutagenesis. · source_derived_draft · unverified_draft

    ## l-serine-sdsl-distinction Related enzymes are not interchangeable just because they use the same substrate. Human serine dehydratase-like protein had lower activity than the hepatic enzyme; structures and complementary mutations implicated active-site differences, including Gly72. Model: Recombinant human enzymes, 2.8-angstrom SDSL structure and site-directed mutagenesis. Limitations: This is a comparison of enzyme constructs, not clinical evidence of a dietary shortage. Evidence access: Primary abstract A catalytic mechanism that explains a low catalytic activity of serine dehydratase like-1 from human cancer cells: crystal structure and site-directed mutagenesis studies. · 2008 · https://pubmed.ncbi.nlm.nih.gov/18342636/ · DOI 10.1016/j.bbagen.2008.01.020
    Complete structured claim and evidence
  2. The recombinant human SDH-like protein also had threonine dehydratase activity, with kinetic constants differing substantially from hepatic SDS.

    Experimental context and source evidence
    evidence_access
    Primary abstract
    experimental_model
    Comparative human enzyme kinetics and PLP-binding measurements.
    limitations
    Isoform abundance in cultured cells was low; catalytic capacity does not establish its dominant tissue role.
    nutrient_topic
    L-Threonine collection; species, compartment, exposure, co-substrates and manipulation remain explicit. · L-Threonine
    plain_language
    Closely related enzymes can process the same substrate at different rates.
    primary_references
    Enzymatic and biochemical properties of a novel human serine dehydratase isoform. · 2006 · https://pubmed.ncbi.nlm.nih.gov/16580895/ · DOI 10.1016/j.bbapap.2006.02.010

    L-Threonine: translation, intestinal barrier, metabolism and cross-nutrient mechanisms (2026-09-19) · lines 258–264

    AI-assisted research curation; primary references, access levels and experimental limitations individually identified. Not publisher full text. · supports · Comparative human enzyme kinetics and PLP-binding measurements. · source_derived_draft · unverified_draft

    ## l-threonine-human-sdsl-catabolism Closely related enzymes can process the same substrate at different rates. The recombinant human SDH-like protein also had threonine dehydratase activity, with kinetic constants differing substantially from hepatic SDS. Model: Comparative human enzyme kinetics and PLP-binding measurements. Limitations: Isoform abundance in cultured cells was low; catalytic capacity does not establish its dominant tissue role. Evidence access: Primary abstract Enzymatic and biochemical properties of a novel human serine dehydratase isoform. · 2006 · https://pubmed.ncbi.nlm.nih.gov/16580895/ · DOI 10.1016/j.bbapap.2006.02.010
    Complete structured claim and evidence

Where it participates (unsigned role)

  1. Deleting Pro128 from human hepatic SDS changed substrate kinetic constants and affinity for pyridoxal phosphate.

    PLP → Human hepatic serine dehydratase / SDS source_derived_draftungraded
    Experimental context and source evidence
    evidence_access
    Primary abstract
    experimental_model
    Purified wild-type and engineered human enzymes.
    limitations
    This manipulation does not show that additional B6 restores a mutant enzyme or that ordinary dietary B6 is limiting.
    nutrient_topic
    L-Threonine collection; species, compartment, exposure, co-substrates and manipulation remain explicit. · L-Threonine
    plain_language
    B6-dependent chemistry also depends on the enzyme structure that binds its cofactor.
    primary_references
    Enzymatic and biochemical properties of a novel human serine dehydratase isoform. · 2006 · https://pubmed.ncbi.nlm.nih.gov/16580895/ · DOI 10.1016/j.bbapap.2006.02.010

    L-Threonine: translation, intestinal barrier, metabolism and cross-nutrient mechanisms (2026-09-19) · lines 266–272

    AI-assisted research curation; primary references, access levels and experimental limitations individually identified. Not publisher full text. · supports · Purified wild-type and engineered human enzymes. · source_derived_draft · unverified_draft

    ## l-threonine-human-sds-plp B6-dependent chemistry also depends on the enzyme structure that binds its cofactor. Deleting Pro128 from human hepatic SDS changed substrate kinetic constants and affinity for pyridoxal phosphate. Model: Purified wild-type and engineered human enzymes. Limitations: This manipulation does not show that additional B6 restores a mutant enzyme or that ordinary dietary B6 is limiting. Evidence access: Primary abstract Enzymatic and biochemical properties of a novel human serine dehydratase isoform. · 2006 · https://pubmed.ncbi.nlm.nih.gov/16580895/ · DOI 10.1016/j.bbapap.2006.02.010
    Complete structured claim and evidence

In the sources

Preserved passages that mention this component, quoted exactly. Open one to read it in context.

    This is a research prototype built from draft material. It is not medical advice, and its statements still await verification against the original studies.

    Evidence, AI assistance and curation standards