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Showing TUBGCP3GCP3 is a alias.

TUBGCP3

Gamma-tubulin complex component 3 · UniProt Q96CW5

Length
907 aa
Mass
103.6 kDa
Annotated
2026-06-10
13 papers in source corpus 10 papers cited in narrative 10 extracted findings
Cross-family judge vs UniProt: Affinage preferred faithfulness: 5/6 claims corpus-supported (83%)

Mechanistic narrative

Synthesis pass · prose summary of the discoveries below

TUBGCP3 (GCP3/Spc98p) is a core structural subunit of the gamma-tubulin complexes that template microtubule nucleation at microtubule organizing centers (PMID:8670895, PMID:9566967, PMID:9566969). Together with GCP2/Spc97p, it directly binds gamma-tubulin to constitute the gamma-tubulin small complex, present in stoichiometry of one GCP3 and one GCP2 per two or more gamma-tubulin molecules, and this complex docks at the spindle pole body through the N-terminal domain of Spc110p in yeast (PMID:9384578). GCP3 is functionally required for the nucleation reaction itself: affinity-purified anti-GCP3 antibodies block microtubule nucleation on isolated centrosomes and in microinjected cells (PMID:9566969), and CRISPR knockout in zebrafish produces monopolar spindles, mislocalized centrioles and gamma-tubulin, M-phase arrest, and apoptosis (PMID:31178691). GCP3 assembles into the larger gamma-TuRC, a role conserved across species (PMID:23886939), and its activity is regulated at the SPB through an essential nuclear localization sequence that directs nuclear import of the complex and through cell cycle-dependent, mitotic-checkpoint-stimulated phosphorylation involving the kinase Mps1p (PMID:9529377). GCP3 directly binds MOZART1/MZT1 via its N-terminal region (PMID:24006493), and MZT1-GCP3 submodules anchor the C-terminus of the targeting factor NEDD1 to GCP4/5/6 within the human gamma-TuRC [PMID:bio_10.1101_2024.11.05.622067]. Depletion of GCP3 with GCP2 also disrupts gamma-tubulin complexes in glioblastoma nucleoli, causing G2/M accumulation and mitotic delay (PMID:26079448).

Mechanistic history

Synthesis pass · year-by-year structured walk · 8 steps
  1. 1996 High

    Established that the GCP3 ortholog physically partners with gamma-tubulin, defining it as a gamma-tubulin-associated factor rather than an independent SPB protein.

    Evidence Two-hybrid, co-immunoprecipitation, and dosage suppression/synthetic toxicity genetics with Tub4p in yeast

    PMID:8670895

    Open questions at the time
    • Did not resolve complex stoichiometry or subunit composition
    • Mechanism of SPB anchoring unaddressed
  2. 1997 High

    Defined the gamma-tubulin complex composition and showed how GCP3 anchors it to the spindle pole body, answering how nucleation is spatially restricted.

    Evidence Biochemical purification of the Tub4p complex and interaction mapping with the Spc110p N-terminus in yeast

    PMID:9384578

    Open questions at the time
    • Mammalian anchoring receptor not identified
    • Higher-order gamma-TuRC architecture not resolved
  3. 1998 High

    Extended the gamma-tubulin complex to mammals and demonstrated GCP3 is functionally required for microtubule nucleation, moving beyond a structural-association role.

    Evidence Co-sedimentation, reciprocal co-IP and centrosomal co-localization in human cells, plus antibody inhibition of nucleation on isolated centrosomes and by microinjection

    PMID:9566967 PMID:9566969

    Open questions at the time
    • Did not establish the catalytic/templating mechanism of nucleation
    • Did not test individual GCP3 domains for nucleation function
  4. 1998 High

    Revealed regulatory layers on GCP3: nuclear targeting via an NLS and cell cycle-dependent phosphorylation at the nuclear SPB, linking the complex to mitotic checkpoint control.

    Evidence NLS mapping, cell fractionation, phosphorylation analysis and Mps1p kinase mutant analysis with cell cycle synchronization in yeast

    PMID:9529377

    Open questions at the time
    • Phosphosites and their functional consequences not mapped
    • Whether mammalian GCP3 is similarly regulated unknown
  5. 2013 Medium

    Identified MZT1 as a direct N-terminal binding partner of GCP3 and confirmed cross-species conservation of GCP3 in gamma-TuRC assembly.

    Evidence Yeast two-hybrid and biophysical binding with recombinant proteins (MZT1/Alp6); cross-species complementation of fission yeast Alp6 by human GCP3 with gamma-TuRC fractionation

    PMID:23886939 PMID:24006493

    Open questions at the time
    • Functional role of the MZT1-GCP3 interaction in nucleation not resolved
    • Structural basis of the interaction not determined
  6. 2015 Medium

    Showed GCP3-containing gamma-tubulin complexes localize to glioblastoma nucleoli and that their depletion perturbs cell cycle progression, extending GCP3 function beyond the centrosome.

    Evidence Reciprocal IP, immunoelectron microscopy, and RNAi knockdown with cell cycle analysis in glioblastoma cells

    PMID:26079448

    Open questions at the time
    • Nucleolar function of the complex undefined
    • Single cell-type context
  7. 2019 Medium

    Provided direct in vivo genetic evidence that TUBGCP3 is essential for bipolar spindle assembly and centrosomal gamma-TuRC organization in a vertebrate.

    Evidence CRISPR/Cas9 knockout in zebrafish with spindle/centrosome immunofluorescence and cell cycle analysis in retinal progenitors

    PMID:31178691

    Open questions at the time
    • Tissue specificity of phenotype not fully explained
    • Did not separate nucleation defect from downstream apoptosis
  8. 2024 High

    Resolved how MZT1-GCP3 submodules anchor NEDD1 within the human gamma-TuRC, defining a structural basis for targeting-factor recruitment.

    Evidence Cryo-EM, AlphaFold modeling, and NEDD1 mutant pull-down validation in cultured cells (preprint)

    PMID:bio_10.1101_2024.11.05.622067

    Open questions at the time
    • Peer review pending
    • Functional consequence of NEDD1 anchoring for in vivo nucleation activation not tested

Open questions

Synthesis pass · forward-looking unresolved questions
  • How GCP3-dependent phosphorylation and MZT1/NEDD1 anchoring are integrated to switch gamma-TuRC from an inactive to a nucleation-competent state remains unresolved.
  • No defined activation mechanism linking regulation to nucleation output
  • Mammalian counterpart of the Mps1p/SPB phosphorylation regulation not characterized

Mechanism profile

Synthesis pass · controlled-vocabulary classification · explore literature graph →
Molecular activity
GO:0008092 cytoskeletal protein binding 3 GO:0005198 structural molecule activity 2
Localization
GO:0005815 microtubule organizing center 3 GO:0005634 nucleus 1 GO:0005730 nucleolus 1
Pathway
R-HSA-1640170 Cell Cycle 3 R-HSA-1852241 Organelle biogenesis and maintenance 2
Complex memberships
gamma-tubulin ring complex (gamma-TuRC)gamma-tubulin small complex (gamma-TuSC)

Evidence

Reading pass · 10 per-paper findings extracted from the source corpus
Year Finding Method Journal Conf PMIDs
1996 Spc98p (yeast ortholog of TUBGCP3) physically interacts with Tub4p (yeast gamma-tubulin) as shown by two-hybrid binding, co-immunoprecipitation, and genetic suppression/synthetic toxicity experiments; together they form a complex involved in microtubule organization at the spindle pole body. Two-hybrid assay, co-immunoprecipitation, dosage suppression genetics, synthetic toxicity genetics The EMBO journal High 8670895
1997 Spc98p (yeast ortholog of TUBGCP3) and Spc97p are components of the purified Tub4p (gamma-tubulin) complex (one molecule each with two or more Tub4p molecules), and they mediate binding of the complex to the spindle pole body through interaction with the N-terminal domain of Spc110p. Biochemical purification of the complex, genetic and biochemical interaction mapping with Spc110p The EMBO journal High 9384578
1998 Human GCP3 (TUBGCP3) is a component of the mammalian gamma-tubulin complex: it co-sediments with gamma-tubulin on sucrose gradients, co-immunoprecipitates with gamma-tubulin, and co-localizes with gamma-tubulin at the centrosome. Immunoprecipitation of epitope-tagged gamma-tubulin complexes, sucrose gradient co-sedimentation, immunofluorescence co-localization The Journal of cell biology High 9566967 9566969
1998 Affinity-purified antibodies against human Spc98p (GCP3/TUBGCP3) inhibit microtubule nucleation on isolated centrosomes and in microinjected cells, demonstrating that GCP3 is required for the nucleation reaction. Antibody inhibition assay on isolated centrosomes; antibody microinjection in living cells The Journal of cell biology High 9566969
1998 Spc98p (yeast ortholog of TUBGCP3) contains an essential nuclear localization sequence that directs import of the Tub4p complex into the nucleus, and Spc98p is phosphorylated in a cell cycle-dependent manner specifically at the nuclear (but not cytoplasmic) side of the SPB; this phosphorylation is stimulated by the mitotic checkpoint and involves the kinase Mps1p. Nuclear localization sequence mapping, cell fractionation, phosphorylation analysis, kinase mutant analysis, cell cycle synchronization Molecular biology of the cell High 9529377
2013 MOZART1/Mzt1 (fission yeast homologue) directly interacts with the N-terminal region of GCP3/Alp6 (ortholog of TUBGCP3), as demonstrated by yeast two-hybrid and biophysical assays with recombinant proteins; this interaction contributes to MTOC function. Yeast two-hybrid, biophysical binding assays with recombinant proteins Molecular biology of the cell High 24006493
2013 Human GCP3 (TUBGCP3) can functionally replace fission yeast Alp6 (the GCP3 ortholog) and assembles normally into the >2000 kDa fission yeast gamma-TuRC, demonstrating that GCP3 function and its role in gamma-TuRC assembly are fully conserved across species. Cross-species genetic complementation, sucrose gradient fractionation of gamma-TuRC Journal of cell science Medium 23886939
2015 GCP3 (TUBGCP3) and GCP2 form complexes with gamma-tubulin in the nucleoli of glioblastoma cells, as confirmed by reciprocal immunoprecipitation and immunoelectron microscopy; depletion of GCP2 and GCP3 causes accumulation of cells in G2/M and mitotic delay. Reciprocal immunoprecipitation, immunoelectron microscopy, RNAi knockdown with cell cycle analysis Journal of neuropathology and experimental neurology Medium 26079448
2019 In zebrafish, loss of Tubgcp3 (TUBGCP3) via CRISPR/Cas9 knockout causes cell cycle arrest of retinal progenitor cells in M phase, with aberrant monopolar spindles and abnormal distribution of centrioles and gamma-tubulin, followed by apoptosis, establishing a direct in vivo role for Tubgcp3 in mitotic spindle assembly and gamma-TuRC function at centrosomes. CRISPR/Cas9 knockout in zebrafish, immunofluorescence of spindle/centrosome markers, cell cycle analysis Frontiers in molecular neuroscience Medium 31178691
2024 Cryo-EM structures of the human gamma-TuRC bound to NEDD1 reveal that NEDD1's C-terminus is anchored to GCP4, 5, and 6 via protein modules consisting of MZT1 & GCP3 (TUBGCP3) subcomplexes; NEDD1 does not induce conformational changes in the gamma-TuRC. NEDD1 mutants unable to pull down gamma-tubulin biochemically validated the structural model. Cryo-electron microscopy, AlphaFold modeling, pull-down assay with NEDD1 mutants from cultured cells bioRxivpreprint High bio_10.1101_2024.11.05.622067

Source papers

Stage 0 corpus · 13 papers · ranked by NIH iCite citations
Year Title Journal Citations PMID
1997 Spc98p and Spc97p of the yeast gamma-tubulin complex mediate binding to the spindle pole body via their interaction with Spc110p. The EMBO journal 201 9384578
1998 The mammalian gamma-tubulin complex contains homologues of the yeast spindle pole body components spc97p and spc98p. The Journal of cell biology 178 9566967
1996 The spindle pole body component Spc98p interacts with the gamma-tubulin-like Tub4p of Saccharomyces cerevisiae at the sites of microtubule attachment. The EMBO journal 153 8670895
1998 Characterization of the human homologue of the yeast spc98p and its association with gamma-tubulin. The Journal of cell biology 114 9566969
2002 The plant Spc98p homologue colocalizes with gamma-tubulin at microtubule nucleation sites and is required for microtubule nucleation. Journal of cell science 97 12006626
2012 The GCP3-interacting proteins GIP1 and GIP2 are required for γ-tubulin complex protein localization, spindle integrity, and chromosomal stability. The Plant cell 83 22427335
1998 Spc98p directs the yeast gamma-tubulin complex into the nucleus and is subject to cell cycle-dependent phosphorylation on the nuclear side of the spindle pole body. Molecular biology of the cell 74 9529377
2013 Mzt1/Tam4, a fission yeast MOZART1 homologue, is an essential component of the γ-tubulin complex and directly interacts with GCP3(Alp6). Molecular biology of the cell 38 24006493
2015 Overexpression and Nucleolar Localization of γ-Tubulin Small Complex Proteins GCP2 and GCP3 in Glioblastoma. Journal of neuropathology and experimental neurology 27 26079448
2019 Tubgcp3 Is Required for Retinal Progenitor Cell Proliferation During Zebrafish Development. Frontiers in molecular neuroscience 14 31178691
2021 Tubgcp3 is a mitotic regulator of planarian epidermal differentiation. Gene 6 33482282
2013 Functional replacement of fission yeast γ-tubulin small complex proteins Alp4 and Alp6 by human GCP2 and GCP3. Journal of cell science 5 23886939
2025 Microtubule nucleation: How the NEDD1:MZT1:GCP3 trio captures the γ-TuRC. The Journal of cell biology 0 40663060

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