Component
Human MFSD5 / HsMOT2
Human MFSD5 / HsMOT2. Species, exposure and limitations are retained in each linked claim.
4 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.
Other things that act on it
Enzymes, hormones, genes, and other components with a recorded effect. These are not nutrients, so they do not count toward the arrows above. Each finding names the chapter that recorded it.
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.
What it acts on
Reducing MFSD5 mRNA to 11-35% of control did not reduce molybdate uptake signals at the tested doses.
Experimental context and source evidence
- evidence_span
- {"source_cache": "artifacts/molybdenum-research/23472155.fulltext.txt", "locator": "Exact primary full-text span; zero-based, end-exclusive Unicode character offsets", "file_sha256": "a3c76154f22db125e0e3c74c1dadbb32edae742411e28763ce2116dfd2e8202f", "start_char": 23464, "end_char": 24197, "text_sha256": "442fa593fda3c65b9c6391a3030401fd13548679459d4ccd58ea4da88d9fdfc6"}
- experimental_model
- MolyProbe live-cell FRET, MFSD5 overexpression and siRNA
- exposure
- Molybdate dose/time courses; 10 mM oxalate and 1 mM sulfate comparisons
- limitations
- FRET reports accessible molybdate, not total cofactor occupancy; mRNA knockdown does not prove complete protein depletion.
- nutrient_topic
- Molybdenum research collection; topical membership is not evidence of a direct dietary effect. · Molybdenum
- organism
- Homo sapiens
- plain_language
- This protein was not required for most measured uptake under these conditions.
- primary_references
- [mo-p23472155] Exploring dynamics of molybdate in living animal cells by a genetically encoded FRET nanosensor. (2013). https://pubmed.ncbi.nlm.nih.gov/23472155/ DOI: 10.1371/journal.pone.0058175
- tissue_or_cell_type
- HEK-293T cells
Molybdenum: cofactor assembly, sulfur metabolism and nutrient interactions (2026-09-17) · lines 235–246
AI-assisted literature curation; primary study URLs and scope retained in the document and extraction. Not publisher full text. · supports · MolyProbe live-cell FRET, MFSD5 overexpression and siRNA · source_derived_draft · unverified_draft
### mo-mfsd5-knockdown-null Reducing MFSD5 mRNA to 11-35% of control did not reduce molybdate uptake signals at the tested doses. Condition category: normal nutrient_topic: Molybdenum research collection; topical membership is not evidence of a direct dietary effect. plain_language: This protein was not required for most measured uptake under these conditions. organism: Homo sapiens tissue_or_cell_type: HEK-293T cells experimental_model: MolyProbe live-cell FRET, MFSD5 overexpression and siRNA limitations: FRET reports accessible molybdate, not total cofactor occupancy; mRNA knockdown does not prove complete protein depletion. exposure: Molybdate dose/time courses; 10 mM oxalate and 1 mM sulfate comparisons evidence_span: {"source_cache": "artifacts/molybdenum-research/23472155.fulltext.txt", "locator": "Exact primary full-text span; zero-based, end-exclusive Unicode character offsets", "file_sha256": "a3c76154f22db125e0e3c74c1dadbb32edae742411e28763ce2116dfd2e8202f", "start_char": 23464, "end_char": 24197, "text_sha256": "442fa593fda3c65b9c6391a3030401fd13548679459d4ccd58ea4da88d9fdfc6"} [mo-p23472155] Exploring dynamics of molybdate in living animal cells by a genetically encoded FRET nanosensor. (2013). https://pubmed.ncbi.nlm.nih.gov/23472155/ DOI: 10.1371/journal.pone.0058175
Complete structured claim and evidenceLarge HsMOT2/MFSD5 overexpression increased the molybdate-sensitive FRET signal in HEK-293T cells.
Experimental context and source evidence
- evidence_span
- {"source_cache": "artifacts/molybdenum-research/23472155.fulltext.txt", "locator": "Exact primary full-text span; zero-based, end-exclusive Unicode character offsets", "file_sha256": "a3c76154f22db125e0e3c74c1dadbb32edae742411e28763ce2116dfd2e8202f", "start_char": 23464, "end_char": 24197, "text_sha256": "442fa593fda3c65b9c6391a3030401fd13548679459d4ccd58ea4da88d9fdfc6"}
- experimental_model
- MolyProbe live-cell FRET, MFSD5 overexpression and siRNA
- exposure
- Molybdate dose/time courses; 10 mM oxalate and 1 mM sulfate comparisons
- limitations
- The text reports millimolar values in this passage that differ from micromolar labeling elsewhere; this claim preserves the directional finding without inferring an exact effective concentration.
- nutrient_topic
- Molybdenum research collection; topical membership is not evidence of a direct dietary effect. · Molybdenum
- organism
- Homo sapiens
- plain_language
- Making much more of the transporter increased uptake in this cell model.
- primary_references
- [mo-p23472155] Exploring dynamics of molybdate in living animal cells by a genetically encoded FRET nanosensor. (2013). https://pubmed.ncbi.nlm.nih.gov/23472155/ DOI: 10.1371/journal.pone.0058175
- tissue_or_cell_type
- HEK-293T cells
Molybdenum: cofactor assembly, sulfur metabolism and nutrient interactions (2026-09-17) · lines 222–233
AI-assisted literature curation; primary study URLs and scope retained in the document and extraction. Not publisher full text. · supports · MolyProbe live-cell FRET, MFSD5 overexpression and siRNA · source_derived_draft · unverified_draft
### mo-mfsd5-overexpression Large HsMOT2/MFSD5 overexpression increased the molybdate-sensitive FRET signal in HEK-293T cells. Condition category: normal nutrient_topic: Molybdenum research collection; topical membership is not evidence of a direct dietary effect. plain_language: Making much more of the transporter increased uptake in this cell model. organism: Homo sapiens tissue_or_cell_type: HEK-293T cells experimental_model: MolyProbe live-cell FRET, MFSD5 overexpression and siRNA limitations: The text reports millimolar values in this passage that differ from micromolar labeling elsewhere; this claim preserves the directional finding without inferring an exact effective concentration. exposure: Molybdate dose/time courses; 10 mM oxalate and 1 mM sulfate comparisons evidence_span: {"source_cache": "artifacts/molybdenum-research/23472155.fulltext.txt", "locator": "Exact primary full-text span; zero-based, end-exclusive Unicode character offsets", "file_sha256": "a3c76154f22db125e0e3c74c1dadbb32edae742411e28763ce2116dfd2e8202f", "start_char": 23464, "end_char": 24197, "text_sha256": "442fa593fda3c65b9c6391a3030401fd13548679459d4ccd58ea4da88d9fdfc6"} [mo-p23472155] Exploring dynamics of molybdate in living animal cells by a genetically encoded FRET nanosensor. (2013). https://pubmed.ncbi.nlm.nih.gov/23472155/ DOI: 10.1371/journal.pone.0058175
Complete structured claim and evidenceHuman HsMOT2/MFSD5 expression supported molybdate uptake in yeast, with an apparent affinity near 550 nM.
Experimental context and source evidence
- evidence_span
- {"source_cache": "artifacts/molybdenum-research/21464289.abstract.txt", "locator": "Exact primary indexed abstract; zero-based, end-exclusive Unicode character offsets", "file_sha256": "d2ba286dba58f70f8a9e9a4f61259329ed5f458d5c4b1e9cd13c64df916f300d", "start_char": 0, "end_char": 1707, "text_sha256": "d2ba286dba58f70f8a9e9a4f61259329ed5f458d5c4b1e9cd13c64df916f300d"}
- experimental_model
- Human HsMOT2 expressed in Saccharomyces cerevisiae, with separate algal experiments
- exposure
- Molybdate uptake assays and oxyanion comparisons
- limitations
- Establishes transport capacity in yeast; does not identify the dominant intestinal or renal transporter in people.
- nutrient_topic
- Molybdenum research collection; topical membership is not evidence of a direct dietary effect. · Molybdenum
- organism
- Human protein in yeast; Chlamydomonas experiments separately
- plain_language
- A human protein can carry molybdate when tested in yeast.
- primary_references
- [mo-p21464289] Algae and humans share a molybdate transporter. (2011). https://pubmed.ncbi.nlm.nih.gov/21464289/ DOI: 10.1073/pnas.1100700108
- tissue_or_cell_type
- Heterologous membrane transport
Molybdenum: cofactor assembly, sulfur metabolism and nutrient interactions (2026-09-17) · lines 196–207
AI-assisted literature curation; primary study URLs and scope retained in the document and extraction. Not publisher full text. · supports · Human HsMOT2 expressed in Saccharomyces cerevisiae, with separate algal experiments · source_derived_draft · unverified_draft
### mo-mfsd5-uptake Human HsMOT2/MFSD5 expression supported molybdate uptake in yeast, with an apparent affinity near 550 nM. Condition category: normal nutrient_topic: Molybdenum research collection; topical membership is not evidence of a direct dietary effect. plain_language: A human protein can carry molybdate when tested in yeast. organism: Human protein in yeast; Chlamydomonas experiments separately tissue_or_cell_type: Heterologous membrane transport experimental_model: Human HsMOT2 expressed in Saccharomyces cerevisiae, with separate algal experiments limitations: Establishes transport capacity in yeast; does not identify the dominant intestinal or renal transporter in people. exposure: Molybdate uptake assays and oxyanion comparisons evidence_span: {"source_cache": "artifacts/molybdenum-research/21464289.abstract.txt", "locator": "Exact primary indexed abstract; zero-based, end-exclusive Unicode character offsets", "file_sha256": "d2ba286dba58f70f8a9e9a4f61259329ed5f458d5c4b1e9cd13c64df916f300d", "start_char": 0, "end_char": 1707, "text_sha256": "d2ba286dba58f70f8a9e9a4f61259329ed5f458d5c4b1e9cd13c64df916f300d"} [mo-p21464289] Algae and humans share a molybdate transporter. (2011). https://pubmed.ncbi.nlm.nih.gov/21464289/ DOI: 10.1073/pnas.1100700108
Complete structured claim and evidence
What acts on it
Tungstate inhibited HsMOT2-dependent molybdate uptake in yeast; 1 mM sulfate had little effect.
Experimental context and source evidence
- evidence_span
- {"source_cache": "artifacts/molybdenum-research/21464289.fulltext.txt", "locator": "Exact primary full-text span; zero-based, end-exclusive Unicode character offsets", "file_sha256": "861076d0403540a9fe3ad941cd7c0807224cb9323da6d8179546e9983f782cc7", "start_char": 18693, "end_char": 18917, "text_sha256": "df769097827247aa8c9b82a5877b016a6977021d43424f2deed3aad684c51688"}
- experimental_model
- Human HsMOT2 expressed in Saccharomyces cerevisiae, with separate algal experiments
- exposure
- Molybdate uptake assays and oxyanion comparisons
- limitations
- The text and figure use different tungstate concentrations; no exact tungstate dose is assigned here. Yeast assay, not human dietary competition.
- nutrient_topic
- Molybdenum research collection; topical membership is not evidence of a direct dietary effect. · Molybdenum
- organism
- Human protein in yeast; Chlamydomonas experiments separately
- plain_language
- Tungstate competed in this transporter assay, while sulfate had little effect.
- primary_references
- [mo-p21464289] Algae and humans share a molybdate transporter. (2011). https://pubmed.ncbi.nlm.nih.gov/21464289/ DOI: 10.1073/pnas.1100700108
- tissue_or_cell_type
- Heterologous membrane transport
Molybdenum: cofactor assembly, sulfur metabolism and nutrient interactions (2026-09-17) · lines 209–220
AI-assisted literature curation; primary study URLs and scope retained in the document and extraction. Not publisher full text. · supports · Human HsMOT2 expressed in Saccharomyces cerevisiae, with separate algal experiments · source_derived_draft · unverified_draft
### mo-tungstate-transport Tungstate inhibited HsMOT2-dependent molybdate uptake in yeast; 1 mM sulfate had little effect. Condition category: normal nutrient_topic: Molybdenum research collection; topical membership is not evidence of a direct dietary effect. plain_language: Tungstate competed in this transporter assay, while sulfate had little effect. organism: Human protein in yeast; Chlamydomonas experiments separately tissue_or_cell_type: Heterologous membrane transport experimental_model: Human HsMOT2 expressed in Saccharomyces cerevisiae, with separate algal experiments limitations: The text and figure use different tungstate concentrations; no exact tungstate dose is assigned here. Yeast assay, not human dietary competition. exposure: Molybdate uptake assays and oxyanion comparisons evidence_span: {"source_cache": "artifacts/molybdenum-research/21464289.fulltext.txt", "locator": "Exact primary full-text span; zero-based, end-exclusive Unicode character offsets", "file_sha256": "861076d0403540a9fe3ad941cd7c0807224cb9323da6d8179546e9983f782cc7", "start_char": 18693, "end_char": 18917, "text_sha256": "df769097827247aa8c9b82a5877b016a6977021d43424f2deed3aad684c51688"} [mo-p21464289] Algae and humans share a molybdate transporter. (2011). https://pubmed.ncbi.nlm.nih.gov/21464289/ DOI: 10.1073/pnas.1100700108
Complete structured claim and evidence
The events it takes part in
A mechanism often involves more than two components. These are the full events, with every participant and its role.
Situations it appears in
Low-supply and faulty-machinery situations recorded in the chapters where this component plays a part.
In the sources
Preserved passages that mention this component, quoted exactly. Open one to read it in context.
Open hypotheses
Proposed ideas that involve this component. They are labeled as hypotheses and do not change any recorded statement.
This is a research prototype built from draft material. It is not medical advice, and its statements still await verification against the original studies.