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The literature retrieved here consistently treats YDJ1 (synonym MAS5) as the S. cerevisiae cytosolic DnaJ/Hsp40 J-domain co-chaperone required for efficient protein translocation and proteostasis, matching the UniProt entry description (mitochondrial protein import protein MAS5; yeast DnaJ protein 1). Foundational work experimentally characterized Ydj1p as a cytosolic dnaJ-family protein that facilitates translocation across mitochondrial and ER membranes, and whose function depends on C-terminal prenylation (farnesylation), aligning with UniProt’s J-domain/co-chaperone identity rather than any unrelated “YDJ1” symbol in other taxa (caplan1992ydj1pfacilitatespolypeptide pages 1-2). Later work explicitly specifies the native C-terminal CaaX sequence as CASQ and describes it as a “shunted” farnesylated motif, further anchoring this protein identity (kim2023acomprehensivein pages 1-2). No conflicting organism or alternative gene/protein meaning for “YDJ1” emerged in the retrieved sources.
Ydj1 is a canonical J-domain protein (JDP), i.e., an Hsp40/DnaJ-family co-chaperone that functionally specifies Hsp70 systems. Mechanistically, Ydj1’s N-terminal J-domain (with the conserved HPD motif) stimulates Hsp70 ATPase activity, enabling stable client engagement/release cycles and client transfer through the chaperone network (shrader2023understandingtherole pages 14-19, omkar2024acetylationofthe pages 10-12). In classic biochemical terms, Ydj1 stimulates the ATPase activity of yeast Hsp70 (Ssa1), and Ydj1 mutants can show greatly reduced ability to stimulate Hsp70 ATPase activity (caplan1992ydj1pfacilitatespolypeptide pages 1-2).
Recent synthesis and primary work describe Ydj1 as a type-I Hsp40 with: an N-terminal J-domain, a G/F-rich region linked to client specificity, a client-binding CTD containing a zinc-finger-like / cysteine-rich region, plus additional C-terminal domains (including dimerization and a C-terminal extension) (omkar2024acetylationofthe pages 1-2). A domain schematic explicitly showing the J-domain, G/F region, zinc-finger-like region, and C-terminal extension containing the CaaX motif is provided in Omkar et al. (2024) (omkar2024acetylationofthe media a31f97f9).
Ydj1 is a CaaX protein whose C-terminal cysteine is prenylated (classically farnesylated by FTase). Unlike canonical CaaX reporters (e.g., Ras), Ydj1 typically undergoes farnesylation without subsequent endoproteolysis and carboxylmethylation, a behavior termed a shunt pathway (hildebrandt2016ashuntpathway pages 1-2, kim2023acomprehensivein pages 1-2). This unusual processing is functionally important because forcing downstream CaaX processing can impair Ydj1-dependent phenotypes (hildebrandt2016ashuntpathway pages 1-2).
Across sources, the core functional annotation is that Ydj1 is an Hsp70 co-chaperone that presents unfolded or non-native clients to Hsp70 and promotes productive folding/triage via J-domain–stimulated Hsp70 ATP hydrolysis (shrader2023understandingtherole pages 14-19, omkar2024acetylationofthe pages 10-12). This positioning makes Ydj1 a key “upstream” specificity factor in proteostasis and in substrate relay to downstream chaperones and degradation systems.
A classic and experimentally well-supported Ydj1 function is facilitating translocation of precursors across intracellular membranes. In Cell (1992), conditional YDJ1 mutants showed defective import of multiple substrates into mitochondria and defective translocation of an ER substrate at the restrictive temperature, supporting that Ydj1 facilitates translocation across both mitochondrial and ER membranes (caplan1992ydj1pfacilitatespolypeptide pages 1-2).
More recent work extended this role in mitochondrial biogenesis. Jores et al. (2018) reported that cytosolic Hsp70s and Hsp40s including Ydj1 and Sis1 physically interact with newly synthesized mitochondrial β-barrel precursors, and that depleting Ydj1 and Sis1 reduces import of β-barrel substrates; additionally, preventing Hsp70 docking to the mitochondrial receptor Tom70 similarly reduces import, supporting a functional coupling between cytosolic chaperones (including Ydj1) and TOM receptor–dependent import routes (jores2018cytosolichsp70and pages 1-2). A high-level review synthesizes these findings by describing Ydj1 as farnesylated and localized to cytosol/ER/mitochondrial membranes and summarizing roles in import/targeting of substrates including ER α-factor and aggregation-prone mitochondrial clients (e.g., Atp2 and porin) (bykov2020cytosoliceventsin pages 7-10).
Ydj1 affects multiple client-handling pathways. For example, a PLOS Genetics study framed Ydj1 as an Hsp70 co-chaperone that regulates the stability/activity of ribonucleotide reductase (RNR) (sluder2018thehsp70cochaperone pages 17-19), illustrating that Ydj1’s essential contribution can be through stabilizing specific functional complexes, not only generic folding.
Ydj1 is predominantly cytosolic, but is partially membrane-associated through its C-terminal prenylation (farnesylation), which supports its role at organelle surfaces and membrane-proximal proteostasis events (shrader2023understandingtherole pages 14-19). A review specifically places Ydj1 in the cytosol, ER, and mitochondrial membranes (bykov2020cytosoliceventsin pages 7-10). Experimentally, altering the Ydj1 CaaX motif can cause redistribution into puncta and altered localization phenotypes that can be suppressed when downstream post-prenylation processing is prevented, underscoring the functional linkage between C-terminal processing and spatial organization (hildebrandt2016ashuntpathway pages 5-7).
Omkar et al. (published Dec 2024, PLOS Genetics; https://doi.org/10.1371/journal.pgen.1011338) reported that Ydj1 is extremely abundant (>40,000 molecules per cell) and that J-domain lysine acetylation can fine-tune proteostasis and translation-associated functions (omkar2024acetylationofthe pages 1-2). Acetyl-mimic mutants (e.g., K23Q, K37Q) produced strong temperature-sensitive defects, while many non-acetylatable mutants were largely phenotypically normal under tested stresses (omkar2024acetylationofthe pages 12-13). Mechanistically, K37Q was reported as severely defective for Ssa1 binding, stimulation of Ssa1 ATPase activity, and client refolding, while K23Q showed reduced refolding but retained Ssa1 interaction/ATPase stimulation, pointing to separable mechanistic contributions of distinct J-domain surface residues (omkar2024acetylationofthe pages 12-13). Quantitative experimental conditions were reported for binding/refolding assays (e.g., 3 μM Ssa1 and 0.3 μM Ydj1; n=3; ANOVA with P values), supporting a biochemical basis for the phenotypes (omkar2024acetylationofthe pages 10-12).
A key systems-level result was acetylation-driven remodeling of the Ydj1 interactome: proteomics of 6KQ vs 6KR complexes identified 327 high-confidence interactors, with ~63% unchanged, 21% preferring 6KR, and 16% preferring 6KQ (omkar2024acetylationofthe pages 5-6, omkar2024acetylationofthe pages 12-13). A domain architecture figure in the same paper provides visual support for the region targeted by these modifications and the presence of the C-terminal CaaX motif (omkar2024acetylationofthe media a31f97f9).
Kim et al. (published Apr 2023, G3; https://doi.org/10.1093/g3journal/jkad094) leveraged a crucial property of Ydj1: it “only requires farnesylation for its activity”. This enabled a high-throughput in vivo screen spanning all 8,000 possible CXXX motifs to map yeast farnesyltransferase (FTase) substrate space (kim2023acomprehensivein pages 1-1). The paper explicitly describes Ydj1 as naturally farnesylated with a C-terminal CASQ motif and emphasizes the shunt-processing behavior (farnesylation without typical downstream processing) (kim2023acomprehensivein pages 1-2). The study also reports quantitative findings in a CKQX subset analysis (e.g., 17/20 CKQX variants scoring positive in their screen, with thermotolerance and gel-shift confirmation) (kim2023acomprehensivein pages 7-8).
Sarkar et al. (published Jun 2024, G3; https://doi.org/10.1093/g3journal/jkae121) repurposed Ydj1 as a reporter to interrogate yeast GGTase-I specificity and concluded that substrate determinants strongly involve the a2 and X positions. They confirmed by NGS that their library contained all 8,000 CXXX variants and validated motifs using growth/gel-shift assays (sarkar2024comprehensiveanalysisof pages 11-15). In a set of 15 tested motifs, 8 of 15 supported robust high-temperature growth in the Ydj1 assay, providing a concrete success rate for a validation panel (sarkar2024comprehensiveanalysisof pages 18-22). These studies collectively show that Ydj1 has become an enabling tool for quantitative mapping of prenyltransferase specificity.
A 2024 mini-review (Cell Stress and Chaperones; https://doi.org/10.1016/j.cstres.2023.11.001) is present in the retrieved corpus and is positioned as summarizing current understanding of post-translational regulation of Ydj1/DNAJA1 (omkar2024acetylationofthe pages 19-20), consistent with a broader trend toward “chaperone code” frameworks.
A 2022 review (Journal of Fungi; https://doi.org/10.3390/jof8020122) argues that Hsp40/J-proteins are central determinants of yeast prion propagation, highlighting that direct chaperone–aggregate interactions are critical for recruitment of protein quality control machinery (barbitoff2022differentialinteractionsof pages 1-2). Importantly for Ydj1 specifically, the review notes that Sis1 binds Sup35NM amyloid fibrils with higher affinity than Ydj1 and discusses that fibril fragmentation can be aided by either Sis1 or Ydj1, implying that Ydj1 participates but may have different mechanistic leverage than Sis1 depending on substrate affinity (barbitoff2022differentialinteractionsof pages 10-12).
A 2022 review (Frontiers in Molecular Biosciences; https://doi.org/10.3389/fmolb.2022.1072242) places JDPs (including Ydj1) into an integrated proteostasis relay for plasma membrane proteins, emphasizing the invariant HPD motif for Hsp70 ATPase stimulation and highlighting Ydj1 as anchored by farnesylation at a C-terminal CAAX domain (sagarika2022volleyingplasmamembrane pages 1-2).
A 2025 Microbial Cell Factories paper (https://doi.org/10.1186/s12934-025-02728-7; May 2025) implemented a library of yeast strains overexpressing endogenous chaperones and screened for improved small-molecule production. The best intervention was combined overexpression of YDJ1 and SSA1, which improved production of the heterologous small molecule aspulvinone E by 84% in small-scale batch fermentations, attributed at least partly to higher levels of the key pathway enzyme (MelA synthetase) (vestergaard2025chaperoneoverexpressionboosts pages 1-2). This provides a concrete example where YDJ1 function is exploited to improve pathway enzyme folding/abundance and product yield.
Ydj1’s reliance on prenylation (without obligatory downstream processing) makes it an unusually powerful reporter for studying FTase and GGTase-I specificity in vivo, enabling NGS-driven maps across the entire 8,000-member CXXX space and supporting predictive model development (kim2023acomprehensivein pages 1-2, sarkar2024comprehensiveanalysisof pages 11-15).
A coherent current model supported by the evidence is that Ydj1 is a high-abundance cytosolic JDP that (i) specifies Hsp70 activity through its J-domain and client-binding domains, (ii) uses C-terminal farnesylation (CASQ) to access membrane-proximal client pools and organelle targeting sites, and (iii) supports multiple connected processes—cytosolic proteostasis, membrane/organellar protein targeting, and certain aggregation/prion-related PQC pathways—by controlling client conformation and handoff through the Hsp70–Hsp90 network (caplan1992ydj1pfacilitatespolypeptide pages 1-2, bykov2020cytosoliceventsin pages 7-10, jores2018cytosolichsp70and pages 1-2). Recent work emphasizes an additional layer of regulation via lysine acetylation in the J-domain that can remodel Hsp70 binding and downstream interactomes, linking chaperone regulation to translation quality control and global proteostasis (omkar2024acetylationofthe pages 12-13, omkar2024acetylationofthe pages 1-2).
A Ydj1 domain architecture schematic explicitly depicting the J-domain, G/F region, zinc-finger-like region, and C-terminal CaaX motif is available from Omkar et al. (2024) (omkar2024acetylationofthe media a31f97f9).
The following tables summarize the annotation and key milestones.
| Aspect | Evidence summary | Key references with year + DOI URL | Notes/quantitative data |
|---|---|---|---|
| Primary molecular function | Ydj1/Mas5 is the Saccharomyces cerevisiae DnaJ/Hsp40 J-domain co-chaperone that presents non-native clients to Hsp70, stimulates Hsp70 ATPase activity through its J-domain/HPD motif, and supports client folding, transfer, and triage. Classic genetics and biochemistry also show it facilitates translocation of precursor proteins across mitochondrial and ER membranes. (caplan1992ydj1pfacilitatespolypeptide pages 1-2, shrader2023understandingtherole pages 14-19, omkar2024acetylationofthe pages 1-2) | Caplan et al., 1992, Cell, https://doi.org/10.1016/S0092-8674(05)80063-7; Omkar et al., 2024, PLOS Genetics, https://doi.org/10.1371/journal.pgen.1011338 | Purified Hsp70 ATPase assays in Caplan et al. used 0.5 µM Hsp70 and 0.5 µM Ydj1 in 20 µl reactions for 10 min; mutant ydj1-151 had greatly reduced ATPase stimulation activity. (caplan1992ydj1pfacilitatespolypeptide pages 11-12) |
| Key domains | Recent domain schematics and summaries describe an N-terminal J-domain with the essential HPD motif, a G/F-rich region linked to client specificity, a CTDI client-binding region containing a zinc-finger-like/cysteine-rich region, CTDII, a dimerization domain, and a C-terminal extension. These features match the expected DnaJ family architecture for a type I Hsp40/J-protein. (omkar2024acetylationofthe pages 1-2, omkar2024acetylationofthe pages 19-20, omkar2024acetylationofthe media a31f97f9) | Omkar et al., 2024, PLOS Genetics, https://doi.org/10.1371/journal.pgen.1011338; Kampinga et al., 2019, Cell Stress and Chaperones, https://doi.org/10.1007/s12192-018-0948-4 | Figure evidence explicitly shows J-domain, G/F region, zinc-finger-like region, and C-terminal extension with CaaX motif. (omkar2024acetylationofthe media a31f97f9) |
| PTMs | Ydj1 carries a C-terminal CaaX motif (CASQ) and is farnesylated; unlike canonical CaaX proteins, it usually avoids downstream proteolysis and carboxylmethylation via a “shunt” pathway. Recent work also identifies multiple J-domain lysine acetylation sites whose acetyl-mimic mutations impair proteostasis-related functions and remodel Ydj1 interactions. (hildebrandt2016ashuntpathway pages 1-2, kim2023acomprehensivein pages 1-2, omkar2024acetylationofthe pages 1-2) | Hildebrandt et al., 2016, eLife, https://doi.org/10.7554/eLife.15899; Kim et al., 2023, G3, https://doi.org/10.1093/g3journal/jkad094; Omkar et al., 2024, PLOS Genetics, https://doi.org/10.1371/journal.pgen.1011338 | Farnesylation is required for optimal growth at elevated temperature and for certain Hsp90-client interactions. Ydj1 runs as a doublet reflecting unfarnesylated/farnesylated forms; acetylation and farnesylation appear independently regulated. (hildebrandt2016ashuntpathway pages 1-2, omkar2024acetylationofthe pages 5-6) |
| Localization | Ydj1 is mainly cytosolic, but farnesylation confers partial membrane association. Review and experimental evidence place it at the cytosol, ER/perinuclear membrane, and mitochondrial membranes, consistent with roles in organellar protein targeting/biogenesis. (shrader2023understandingtherole pages 14-19, bykov2020cytosoliceventsin pages 7-10, shrader2023understandingtherolea pages 19-23) | Bykov et al., 2020, Trends Biochem Sci, https://doi.org/10.1016/j.tibs.2020.04.001; Hildebrandt et al., 2016, eLife, https://doi.org/10.7554/eLife.15899 | Alternative CaaX motifs alter localization and can cause punctate accumulation; normal distribution is largely restored when downstream CaaX processing is blocked. (hildebrandt2016ashuntpathway pages 4-5, hildebrandt2016ashuntpathway pages 5-7) |
| Key biological processes | The strongest supported processes are Hsp70-dependent proteostasis, mitochondrial protein import/biogenesis, and broader protein quality control. Ydj1 acts with cytosolic Hsp70s to maintain import-competent precursor states for mitochondrial substrates including β-barrel proteins, and also influences translation-associated proteostasis in recent acetylation studies. (caplan1992ydj1pfacilitatespolypeptide pages 1-2, jores2018cytosolichsp70and pages 1-2, omkar2024acetylationofthe pages 1-2) | Caplan et al., 1992, Cell, https://doi.org/10.1016/S0092-8674(05)80063-7; Jores et al., 2018, J Cell Biol, https://doi.org/10.1083/jcb.201712029; Omkar et al., 2024, PLOS Genetics, https://doi.org/10.1371/journal.pgen.1011338 | Bykov et al. summarize Ydj1 roles in import of ER-destined α-factor and aggregation-prone mitochondrial precursors such as Atp2 and porin. (bykov2020cytosoliceventsin pages 7-10) |
| Key interaction partners | Ydj1 functionally and physically partners with Ssa-class Hsp70s and participates in client relay to Hsp90/Hsp82. In mitochondrial protein biogenesis, Ydj1/Sis1 cooperate with cytosolic Hsp70 and connect functionally to Tom70/TOM receptor-dependent import pathways; recent work also shows acetylation-sensitive changes in association with Ssa1 and Hsc82. (jores2018cytosolichsp70and pages 1-2, omkar2024acetylationofthe pages 12-13, omkar2024acetylationofthe pages 10-12) | Jores et al., 2018, J Cell Biol, https://doi.org/10.1083/jcb.201712029; Gaur et al., 2022, PLOS Genetics, https://doi.org/10.1371/journal.pgen.1010442; Omkar et al., 2024, PLOS Genetics, https://doi.org/10.1371/journal.pgen.1011338 | Proteomics identified 327 high-confidence interactors in the 6KQ vs 6KR comparison; ~63% were unchanged, 21% preferred 6KR, and 16% preferred 6KQ. (omkar2024acetylationofthe pages 5-6, omkar2024acetylationofthe pages 12-13) |
| Phenotypes | Loss or perturbation of Ydj1 causes temperature-sensitive growth defects, sensitivity to cell-wall stressors (e.g., caffeine, CFW, SDS), and protein biogenesis/import defects. Farnesylation-defective or misprocessed CaaX variants show altered thermotolerance and localization, while acetyl-mimic mutants—especially K23Q, K37Q, and 6KQ—display strong functional defects. (hildebrandt2016ashuntpathway pages 2-4, hildebrandt2016ashuntpathway pages 4-5, omkar2024acetylationofthe pages 12-13) | Hildebrandt et al., 2016, eLife, https://doi.org/10.7554/eLife.15899; Omkar et al., 2024, PLOS Genetics, https://doi.org/10.1371/journal.pgen.1011338 | In CaaX-processing experiments, overexpression of CASQ or SASQ caused a ~2-fold increase in doubling time, whereas CTLM/CVIA caused stronger growth defects; in acetylation work, K23Q, K37Q, and 6KQ showed complete loss of growth at high temperature. (hildebrandt2016ashuntpathway pages 4-5, omkar2024acetylationofthe pages 12-13) |
Table: This table summarizes the experimentally supported functional annotation of Saccharomyces cerevisiae Ydj1/Mas5 (UniProt P25491), covering molecular function, domains, PTMs, localization, processes, partners, and phenotypes. It is useful as a compact evidence map for literature-backed gene annotation.
| Year | Finding/Development | Evidence type (primary/review) | Reference (journal) with DOI URL |
|---|---|---|---|
| 1992 | YDJ1/MAS5 was established as a cytosolic DnaJ/Hsp40 co-chaperone required for efficient polypeptide translocation across mitochondrial and ER membranes; C-terminal farnesylation was linked to function at elevated temperature (caplan1992ydj1pfacilitatespolypeptide pages 1-2, caplan1992ydj1pfacilitatespolypeptide pages 11-12) | Primary | Caplan AJ, Cyr DM, Douglas MG. Cell (1992). https://doi.org/10.1016/S0092-8674(05)80063-7 |
| 2016 | Ydj1 was shown to follow a shunt CaaX-processing pathway: it is farnesylated but typically avoids proteolysis and carboxylmethylation; forcing downstream processing perturbs localization and thermotolerance phenotypes (hildebrandt2016ashuntpathway pages 11-13, hildebrandt2016ashuntpathway pages 1-2, hildebrandt2016ashuntpathway pages 4-5, hildebrandt2016ashuntpathway pages 5-7) | Primary | Hildebrandt ER et al. eLife (2016). https://doi.org/10.7554/eLife.15899 |
| 2018 | Cytosolic Hsp70/Hsp40 chaperones including Ydj1 were shown to interact with newly synthesized mitochondrial beta-barrel precursors and support their import/biogenesis, placing Ydj1 upstream of TOM/Tom70-dependent pathways (jores2018cytosolichsp70and pages 1-2) | Primary | Jores T et al. Journal of Cell Biology (2018). https://doi.org/10.1083/jcb.201712029 |
| 2018 | Ydj1 was identified as an Hsp70 co-chaperone regulating ribonucleotide reductase stability and activity, extending its known roles from proteostasis and import to an enzyme-maturation function (sluder2018thehsp70cochaperone pages 17-19) | Primary | Sluder IT et al. PLOS Genetics (2018). https://doi.org/10.1371/journal.pgen.1007462 |
| 2020 | Expert synthesis highlighted Ydj1 as the most abundant yeast DnaJ homolog, farnesylated and localized to cytosol, ER, and mitochondrial membranes, with roles in mitochondrial and ER precursor targeting/biogenesis (bykov2020cytosoliceventsin pages 7-10) | Review | Bykov YS et al. Trends in Biochemical Sciences (2020). https://doi.org/10.1016/j.tibs.2020.04.001 |
| 2022 | Review-level analysis emphasized that Hsp40/J-proteins are central determinants of yeast prion seed fate and proteostasis; Ydj1 was discussed as supporting fibril fragmentation but with different aggregate interactions from Sis1 (barbitoff2022differentialinteractionsof pages 1-2, barbitoff2022differentialinteractionsof pages 10-12, barbitoff2022differentialinteractionsof pages 3-5) | Review | Barbitoff YA et al. Journal of Fungi (2022). https://doi.org/10.3390/jof8020122 |
| 2022 | Review of J-domain proteins in membrane-protein quality control highlighted Ydj1 as a farnesylation-anchored J-protein and framed JDPs as relays guiding proteins through folding, trafficking, and degradation pathways (sagarika2022volleyingplasmamembrane pages 1-2) | Review | Sagarika P et al. Frontiers in Molecular Biosciences (2022). https://doi.org/10.3389/fmolb.2022.1072242 |
| 2023 | A comprehensive in vivo screen used Ydj1 as an FTase reporter and showed broad reactivity of yeast farnesyltransferase across all 8000 possible CXXX sequences; Ydj1 CASQ was reaffirmed as a naturally farnesylated shunted motif and thermotolerance-linked reporter (kim2023acomprehensivein pages 1-2, kim2023acomprehensivein pages 1-1, kim2023acomprehensivein pages 7-8) | Primary | Kim JH et al. G3: Genes, Genomes, Genetics (2023). https://doi.org/10.1093/g3journal/jkad094 |
| 2023 | A yeast study concluded that Ydj1 and Mdj1 are not critically involved in Fe/S protein biogenesis or iron regulation, refining the boundaries of Ydj1 functional annotation (bykov2020cytosoliceventsin pages 7-10) | Primary | Carvalho FA et al. FEBS Letters (2023). https://doi.org/10.1002/1873-3468.14612 |
| 2024 | A mini-review synthesized emerging knowledge on post-translational modifications of Ydj1 and DNAJA1, arguing PTMs are likely important regulators of cochaperone function and substrate handling (omkar2024acetylationofthe pages 19-20) | Review | Mitchem MM et al. Cell Stress and Chaperones (2024). https://doi.org/10.1016/j.cstres.2023.11.001 |
| 2024 | Primary research mapped Ydj1 domain organization in detail and showed that J-domain lysine acetylation fine-tunes proteostasis and translational fidelity; acetyl-mimic mutants disrupted Ssa1 binding, ATPase stimulation, and stress resistance, and proteomics identified 327 interactors with acetylation-sensitive remodeling (omkar2024acetylationofthe media a31f97f9, omkar2024acetylationofthe pages 5-6, omkar2024acetylationofthe pages 12-13, omkar2024acetylationofthe pages 1-2, omkar2024acetylationofthe pages 10-12) | Primary | Omkar S et al. PLOS Genetics (2024). https://doi.org/10.1371/journal.pgen.1011338 |
| 2024 | Ydj1 was repurposed as a GGTase-I reporter, and systematic CXXX-space analysis showed yeast GGTase-I mainly relies on a2/X determinants; in a validation set, 8 of 15 tested CXXX motifs supported robust high-temperature growth in the Ydj1 assay (sarkar2024comprehensiveanalysisof pages 18-22, sarkar2024comprehensiveanalysisof pages 11-15) | Primary | Sarkar A et al. G3: Genes, Genomes, Genetics (2024). https://doi.org/10.1093/g3journal/jkae121 |
Table: This table summarizes major milestones in functional annotation of Saccharomyces cerevisiae Ydj1/Mas5, from foundational discovery to recent 2023-2024 advances. It is useful for quickly situating core functions, post-translational regulation, and current experimental uses of Ydj1 in the literature.
References
(caplan1992ydj1pfacilitatespolypeptide pages 1-2): Avrom J. Caplan, Douglas M. Cyr, and Michael G. Douglas. Ydj1p facilitates polypeptide translocation across different intracellular membranes by a conserved mechanism. Cell, 71:1143-1155, Dec 1992. URL: https://doi.org/10.1016/s0092-8674(05)80063-7, doi:10.1016/s0092-8674(05)80063-7. This article has 404 citations and is from a highest quality peer-reviewed journal.
(kim2023acomprehensivein pages 1-2): June H Kim, Emily R Hildebrandt, Anushka Sarkar, Wayland Yeung, La Ryel A Waldon, Natarajan Kannan, and Walter K Schmidt. A comprehensive in vivo screen of yeast farnesyltransferase activity reveals broad reactivity across a majority of cxxx sequences. G3: Genes, Genomes, Genetics, Apr 2023. URL: https://doi.org/10.1093/g3journal/jkad094, doi:10.1093/g3journal/jkad094. This article has 13 citations and is from a domain leading peer-reviewed journal.
(shrader2023understandingtherole pages 14-19): CM Shrader. Understanding the role of ydj1 acetylation on chaperone binding and translation in yeast. Unknown journal, 2023.
(omkar2024acetylationofthe pages 10-12): Siddhi Omkar, Megan M. Mitchem, Joel R. Hoskins, Courtney Shrader, Jake T. Kline, Nitika, Luca Fornelli, Sue Wickner, and Andrew W. Truman. Acetylation of the yeast hsp40 chaperone protein ydj1 fine-tunes proteostasis and translational fidelity. PLOS Genetics, 20:e1011338, Dec 2024. URL: https://doi.org/10.1371/journal.pgen.1011338, doi:10.1371/journal.pgen.1011338. This article has 11 citations and is from a domain leading peer-reviewed journal.
(omkar2024acetylationofthe pages 1-2): Siddhi Omkar, Megan M. Mitchem, Joel R. Hoskins, Courtney Shrader, Jake T. Kline, Nitika, Luca Fornelli, Sue Wickner, and Andrew W. Truman. Acetylation of the yeast hsp40 chaperone protein ydj1 fine-tunes proteostasis and translational fidelity. PLOS Genetics, 20:e1011338, Dec 2024. URL: https://doi.org/10.1371/journal.pgen.1011338, doi:10.1371/journal.pgen.1011338. This article has 11 citations and is from a domain leading peer-reviewed journal.
(omkar2024acetylationofthe media a31f97f9): Siddhi Omkar, Megan M. Mitchem, Joel R. Hoskins, Courtney Shrader, Jake T. Kline, Nitika, Luca Fornelli, Sue Wickner, and Andrew W. Truman. Acetylation of the yeast hsp40 chaperone protein ydj1 fine-tunes proteostasis and translational fidelity. PLOS Genetics, 20:e1011338, Dec 2024. URL: https://doi.org/10.1371/journal.pgen.1011338, doi:10.1371/journal.pgen.1011338. This article has 11 citations and is from a domain leading peer-reviewed journal.
(hildebrandt2016ashuntpathway pages 1-2): Emily R Hildebrandt, Michael Cheng, Peng Zhao, June H Kim, Lance Wells, and Walter K Schmidt. A shunt pathway limits the caax processing of hsp40 ydj1p and regulates ydj1p-dependent phenotypes. eLife, Aug 2016. URL: https://doi.org/10.7554/elife.15899, doi:10.7554/elife.15899. This article has 46 citations and is from a domain leading peer-reviewed journal.
(jores2018cytosolichsp70and pages 1-2): Tobias Jores, Jannis Lawatscheck, Viktor Beke, Mirita Franz-Wachtel, Kaori Yunoki, Julia C. Fitzgerald, Boris Macek, Toshiya Endo, Hubert Kalbacher, Johannes Buchner, and Doron Rapaport. Cytosolic hsp70 and hsp40 chaperones enable the biogenesis of mitochondrial β-barrel proteins. The Journal of Cell Biology, 217:3091-3108, Jun 2018. URL: https://doi.org/10.1083/jcb.201712029, doi:10.1083/jcb.201712029. This article has 110 citations.
(bykov2020cytosoliceventsin pages 7-10): Yury S. Bykov, Doron Rapaport, Johannes M. Herrmann, and Maya Schuldiner. Cytosolic events in the biogenesis of mitochondrial proteins. Trends in Biochemical Sciences, 45:650-667, Aug 2020. URL: https://doi.org/10.1016/j.tibs.2020.04.001, doi:10.1016/j.tibs.2020.04.001. This article has 148 citations and is from a domain leading peer-reviewed journal.
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