Research report: *Saccharomyces cerevisiae* **CRH1** (YGR189C; UniProt P53301) Falcon Edison Scientific Literature 27 citations 2 artifacts 2026-05-30T09:42:55.343251

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Research report: Saccharomyces cerevisiae CRH1 (YGR189C; UniProt P53301)

1. Target verification (gene/protein identity)

CRH1 in this report refers specifically to S. cerevisiae S288c YGR189C (UniProt P53301), originally described as Congo red hypersensitive protein 1 and a member of the fungal Crh (Congo red hypersensitivity) family of cell-wall enzymes. The defining molecular features—N-terminal secretion signal, Ser/Thr-rich region, predicted GPI-anchor signal, and GH16 catalytic motif—were experimentally described for YGR189C/Crh1 and align with the UniProt entry. (rodriguezpena2000anovelfamily pages 3-5, rodriguezpena2000anovelfamily pages 7-9, teparic2013proteinsinvolvedin pages 3-5)

2. Key concepts and current understanding

2.1 Yeast cell-wall architecture and “cross-linking”

The S. cerevisiae cell wall is a composite polymer network whose mechanical strength depends not only on synthesis of individual polysaccharides (e.g., chitin and β-glucans) but also on covalent cross-links between them. In this context, “cross-linking” refers to enzymatic creation of covalent bonds that connect different wall polymers, reducing solubility of wall material and increasing rigidity. (teparic2013proteinsinvolvedin pages 12-13, teparic2013proteinsinvolvedin pages 3-5)

2.2 The Crh family and GH16 transglycosylases

Crh proteins are fungal GH16 enzymes implicated in wall remodeling via transglycosylation reactions. In S. cerevisiae, Crh1 and its paralog Crh2 are described as enzymes that attach chitin to β-glucans, thereby interconnecting wall polysaccharides at sites of growth and division. (teparic2013proteinsinvolvedin pages 12-13, cabib2007crh1pandcrh2p pages 1-2, cabib2009twonoveltechniques pages 6-7)

A central biochemical concept is that these enzymes favor transfer (transglycosylation) over net hydrolysis: a glycosidic bond in a donor substrate is cleaved and a new bond is formed to an acceptor polymer/oligosaccharide, effectively “grafting” one polysaccharide segment onto another. (omar2016investigatingtherole pages 41-45, fang2019mechanismsofredundancy pages 1-2)

3. Molecular/enzymatic function of Crh1

3.1 Primary reaction (in vivo cell wall chemistry)

Genetic and biochemical evidence demonstrates that Crh1 and Crh2 are required to form chitin–glucan covalent complexes in the S. cerevisiae wall. In particular, Cabib and colleagues showed that loss of CRH1 or CRH2 reduces chitin linked to β(1→6)-glucan, while the crh1Δ crh2Δ double mutant abolishes detectable chitin–β(1→6)-glucan linkage; overexpression of CRH1 increases the chitin–β(1→6)-glucan complex. (cabib2007crh1pandcrh2p pages 1-2)

A subsequent study using multiple orthogonal analytical methods concluded that Crh1/Crh2 account for all detectable chitin-containing cross-links, attaching chitin not only to β(1→6)-glucan but also to β(1→3)-glucan. (cabib2009twonoveltechniques pages 1-2, cabib2009twonoveltechniques pages 6-7, cabib2009twonoveltechniques pages 7-10)

3.2 Donor/acceptor specificity and substrate constraints

Direct S. cerevisiae wall fractionation supports that chitin is partitioned into free and glucan-linked forms, consistent with transfer of chitin fragments to β-glucan acceptors. (cabib2009twonoveltechniques pages 6-7, cabib2009twonoveltechniques media 0f993bce)

Biochemical characterization summarized for the Crh family indicates:
- Soluble chitin derivatives (e.g., glycol-chitin) can act as donors.
- The enzyme can join the reducing end of a chitin donor to the non-reducing end of an acceptor oligosaccharide.
- Minimal acceptor length can be very short (reported as ~2 monomers in one summary), consistent with transfer onto short β-glucan oligosaccharides. (omar2016investigatingtherole pages 41-45)

High-impact structural/biochemical work on Crh transglycosylases in filamentous fungi provides a mechanistic model likely relevant to yeast Crh enzymes: donor binding spans multiple sugar subsites, acceptor binding is shorter, and the overall architecture helps explain efficient transglycosylation. This work also reports concrete length requirements (minimal donor length of five N-acetyl-chitooligosaccharide units and minimal acceptor length of two glucose units) and provides a structural basis for “acceptor promiscuity” (chitin–glucan and chitin–chitin transfer) observed across the family. (fang2019mechanismsofredundancy pages 1-2)

3.3 Catalytic residues and requirement of the GH16 motif

CRH1 contains the conserved GH16-like catalytic motif DE(I/L)DXE, homologous to motifs in bacterial endo-β-glucanases. A catalytic-site mutant allele (Crh1 with substitutions at key acidic residues) fails to complement Congo red sensitivity, implying that the predicted catalytic residues are essential for function in vivo. (rodriguezpena2000anovelfamily pages 5-6, rodriguezpena2000anovelfamily pages 9-10)

4. Cellular localization and where Crh1 acts

4.1 Cell-surface/cell-wall localization

Crh1 behaves as a cell-wall protein: it is reported to be covalently incorporated into the wall and releasable by glucanase (laminarinase), consistent with a GPI-anchored wall protein that becomes wall-integrated. (rodriguezpena2000anovelfamily pages 7-9)

4.2 Spatial enrichment at chitin-rich growth sites

Crh1-GFP localization studies show enrichment at polarized growth sites—bud emergence, the mother–daughter neck, and bud scars—where chitin is enriched; Crh1 also appears at mating-related structures and marks spore envelopes during sporulation. (rodriguezpena2000anovelfamily pages 7-9, rodriguezpena2000anovelfamily pages 9-10)

Cabib et al. further report that at elevated temperature (38°C) both Crh1 and Crh2 show increased and more broadly distributed cortical/lateral wall localization, consistent with stress-induced remodeling. (cabib2007crh1pandcrh2p pages 9-10)

5. Biological role in pathways and cell physiology

5.1 Role in cell wall integrity and morphogenesis

Crh1’s primary role is best described as strengthening and organizing the wall by creating covalent chitin–β-glucan cross-links at sites of growth and division. Review-level synthesis places Crh1/Crh2 among enzymes that interconnect wall polysaccharides, producing glucan fibrils and contributing to the structured wall network. (teparic2013proteinsinvolvedin pages 12-13, teparic2013proteinsinvolvedin pages 3-5)

5.2 Interaction with the cell integrity pathway (CWI signaling)

CRH1 is transcriptionally and/or protein-level induced by cell-wall stress conditions: shifting cells to 38°C increases CRH1 expression via the cell integrity pathway, and this induction is abolished in an slt2Δ mutant, directly linking CRH1 to the CWI MAPK pathway. (cabib2007crh1pandcrh2p pages 10-12, cabib2007crh1pandcrh2p pages 1-2)

6. Phenotypes and quantitative data from key studies

6.1 Congo red / Calcofluor white hypersensitivity

CRH1 deletion causes sensitivity to cell-wall perturbing dyes Congo red and Calcofluor white, with stronger phenotypes in crh1Δ crh2Δ double mutants, consistent with partially redundant cross-linking functions. (rodriguezpena2000anovelfamily pages 3-5, rodriguezpena2000anovelfamily pages 9-10)

Rodríguez-Peña et al. report increased alkali-soluble glucan in crh mutants, with the crh1Δ crh2Δ double mutant showing an increase that is “almost doubled” versus wild type, consistent with reduced cross-linking/insolubilization of glucan in the wall. (rodriguezpena2000anovelfamily pages 5-6)

Cabib (2009) reports quantitative partitioning of cell-wall chitin (wild type FY001) across three independent methods (carboxymethylation–chromatography; curdlan; chitosan), giving broadly concordant estimates:
- Free chitin: ~36–43% of total chitin
- Chitin–β(1→6)-glucan: ~15–22%
- Total chitin–β(1→3)-glucan: ~37–44%
The crh1 crh2 double mutant shows virtually all chitin as free, i.e., loss of bound fractions. (cabib2009twonoveltechniques pages 6-7, cabib2009twonoveltechniques pages 1-2, cabib2009twonoveltechniques media 0f993bce)

The associated chromatographic/assay readouts are shown in Cabib (2009) figures (fractionation profiles and distributions), providing visual evidence that bound chitin peaks disappear in crh mutants. (cabib2009twonoveltechniques media c7aa73a2, cabib2009twonoveltechniques media 283cf6bf, cabib2009twonoveltechniques media d429ca82)

6.3 Expression statistics and cell-cycle regulation

Rodríguez-Peña et al. report that CRH2 is expressed approximately 6-fold higher than CRH1 in vegetative cells, while CRH1 expression increases approximately 2-fold on galactose and 4–5-fold transiently after release from pheromone arrest; CRH1 expression is cell-cycle regulated with peaks around G1 and M/G1, aligning with functions at budding and septation. (rodriguezpena2000anovelfamily pages 5-6, rodriguezpena2000anovelfamily pages 9-10)

6.4 Overexpression phenotypes

Overexpression of CRH2 confers strong Congo red resistance (reported as growth up to 200 mg/ml Congo red under the described conditions), indicating dosage sensitivity consistent with a wall-strengthening enzyme. (rodriguezpena2000anovelfamily pages 5-6)

7. Recent developments (prioritizing 2023–2024)

7.1 Industrially relevant stress tolerance and wall remodeling (2023)

A 2023 evolutionary engineering study generating 2-phenylethanol-resistant S. cerevisiae identified a missense variant Crh1p.D223N in the adapted strain. While causality was not proven, the authors note increased lyticase resistance in the evolved strain and discuss CRH1/CRH2 as chitin transglycosylases mediating chitin–β-glucan linkages, implicating wall remodeling as part of the tolerance phenotype. (Holyavkin et al., 2023-04, Frontiers in Microbiology, https://doi.org/10.3389/fmicb.2023.1148065) (holyavkin2023genomictranscriptomicand pages 8-9)

Interpretation: Because lyticase primarily targets β(1→3)-glucan, increased resistance is consistent with altered glucan accessibility/architecture and supports the idea that CRH1 sequence variants or regulatory changes can modulate wall robustness under industrially relevant solvent/toxin stress. However, the direct biochemical impact of D223N on Crh1 activity remains an open question. (holyavkin2023genomictranscriptomicand pages 8-9)

7.2 Updated conceptual framing of yeast wall organization (2024)

A 2024 review emphasizes the dynamic organization of the yeast wall and highlights remodeling enzymes—including Gas and Crh-family proteins—as important components shaping wall architecture through ongoing polysaccharide remodeling and noncovalent interactions. This reinforces the contemporary view that Crh-mediated cross-linking is one of several coordinated enzymatic activities controlling wall mechanics and adaptability. (Kalebina et al., 2024-02, International Journal of Molecular Sciences, https://doi.org/10.3390/ijms25052496) (teparic2013proteinsinvolvedin pages 3-5)

8. Current applications and real-world implementations

8.1 Industrial yeast engineering

CRH1 is not typically engineered as a primary metabolic gene, but its demonstrated role in wall strengthening and evidence from adaptive evolution suggest it can influence process robustness (e.g., enzyme-based cell lysis resistance). The 2023 evolved strain linking a CRH1 variant with lyticase resistance provides an example of CRH1 emerging as a candidate locus in industrial strain adaptation pipelines. (holyavkin2023genomictranscriptomicand pages 8-9)

8.2 Antifungal target relevance (family-level evidence)

While S. cerevisiae CRH1 itself is not an antifungal drug target in clinical settings, Crh-family enzymes are fungal-specific wall-assembly factors. Structural/biochemical work on Crh transglycosylases in pathogenic fungi supports the plausibility of Crh inhibition as an antifungal strategy by disrupting chitin–glucan (and potentially chitin–chitin) cross-linking and increasing sensitivity to wall stressors. This family-level mechanistic evidence informs how yeast Crh1 functions and why the enzymatic mechanism is of broad interest. (fang2019mechanismsofredundancy pages 1-2)

9. Expert synthesis and conclusions

  1. Primary function: CRH1 encodes a GH16 transglycosylase that covalently links chitin to β-glucans, contributing to the mechanical integrity and proper architecture of the yeast cell wall. The strongest direct evidence is the abolishment of bound chitin fractions and chitin–β(1→6)glucan complexes in crh mutants, and increased complex formation upon CRH1 overexpression. (cabib2007crh1pandcrh2p pages 1-2, cabib2009twonoveltechniques pages 6-7, cabib2009twonoveltechniques pages 1-2)
  2. Substrate specificity: In vivo, Crh1/Crh2 create both chitin–β(1→6)glucan and chitin–β(1→3)glucan linkages; family-level biochemical/structural work supports short acceptor requirements and a transglycosylation-favoring mechanism. (cabib2009twonoveltechniques pages 6-7, fang2019mechanismsofredundancy pages 1-2)
  3. Cellular site of action: Crh1 is a secreted/GPI-linked wall protein enriched at bud necks, bud scars, and other chitin-rich sites, consistent with a role in building/reinforcing the wall during polarized growth and cytokinesis. (rodriguezpena2000anovelfamily pages 7-9, rodriguezpena2000anovelfamily pages 9-10)
  4. Pathway integration: CRH1 is connected to the cell integrity (CWI) pathway via stress/temperature induction dependent on SLT2, linking cross-link formation to stress-adaptive remodeling. (cabib2007crh1pandcrh2p pages 10-12)
  5. Quantitative wall impact: In wild type, a substantial fraction of wall chitin exists in cross-linked form (≈15–22% to β(1→6)-glucan and ≈37–44% to β(1→3)-glucan, method-dependent), and these linkages are essentially eliminated in crh1 crh2 mutants. (cabib2009twonoveltechniques pages 6-7, cabib2009twonoveltechniques media 0f993bce)

Summary table

The following table consolidates core functional annotation elements and supporting sources.

Aspect Key findings Best supporting citations Primary source (author year journal) and URL/date when available
Identity/domains CRH1 = YGR189C in Saccharomyces cerevisiae encodes Congo red hypersensitive protein 1, a GH16-family cell-wall protein with an N-terminal secretion signal, Ser/Thr-rich region, conserved DE(I/L)DXE catalytic motif, and predicted GPI-anchor attachment sequence; these features match UniProt P53301 and support a cell-surface remodeling role. (rodriguezpena2000anovelfamily pages 3-5, rodriguezpena2000anovelfamily pages 7-9, teparic2013proteinsinvolvedin pages 3-5) Rodríguez-Peña et al. 2000, Molecular and Cellular Biology (May 2000). https://doi.org/10.1128/mcb.20.9.3245-3255.2000
Enzymatic activity CRH1 is experimentally supported as a transglycosylase/transglycosylase-like enzyme that forms covalent chitin–glucan cross-links in the yeast cell wall; catalytic residues in the conserved motif are required for function, and mutating them abolishes complementation of Congo red sensitivity. (cabib2007crh1pandcrh2p pages 1-2, rodriguezpena2000anovelfamily pages 9-10, rodriguezpena2000anovelfamily pages 5-6) Cabib et al. 2007, Molecular Microbiology (Feb 2007). https://doi.org/10.1111/j.1365-2958.2006.05565.x; Rodríguez-Peña et al. 2000, MCB (May 2000). https://doi.org/10.1128/mcb.20.9.3245-3255.2000
Substrates/acceptors Crh1/Crh2 transfer short nascent chitin fragments onto both β(1→6)-glucan and β(1→3)-glucan. In vitro family data indicate soluble chitin derivatives such as glycol chitin can serve as donors, with the donor reducing end joined to the acceptor non-reducing end and a minimal acceptor length of ~2 sugar residues. (cabib2009twonoveltechniques pages 6-7, omar2016investigatingtherole pages 41-45, cabib2009twonoveltechniques pages 7-10) Cabib 2009, Eukaryotic Cell (Nov 2009). https://doi.org/10.1128/EC.00228-09; summarized with biochemical details in later family analysis (omar2016investigatingtherole pages 41-45).
Cellular localization Crh1 localizes to the cell wall/cell cortex at polarized growth sites, including the site of bud emergence, mother–bud neck, bud scars, mating projections, and spore envelope; localization overlaps with chitin-rich regions and supports direct participation in wall assembly. (rodriguezpena2000anovelfamily pages 7-9, rodriguezpena2000anovelfamily pages 9-10, cabib2007crh1pandcrh2p pages 9-10) Rodríguez-Peña et al. 2000, MCB (May 2000). https://doi.org/10.1128/mcb.20.9.3245-3255.2000; Cabib et al. 2007, Molecular Microbiology (Feb 2007). https://doi.org/10.1111/j.1365-2958.2006.05565.x
Regulation CRH1 expression is cell-cycle regulated with peaks around G1 and M/G1, rises transiently 4–5× after pheromone release, and is induced at 38°C through the cell integrity pathway; this heat induction is lost in slt2Δ, linking CRH1 to cell-wall stress signaling. (rodriguezpena2000anovelfamily pages 9-10, rodriguezpena2000anovelfamily pages 5-6, cabib2007crh1pandcrh2p pages 10-12) Rodríguez-Peña et al. 2000, MCB (May 2000). https://doi.org/10.1128/mcb.20.9.3245-3255.2000; Cabib et al. 2007, Molecular Microbiology (Feb 2007). https://doi.org/10.1111/j.1365-2958.2006.05565.x
Mutant phenotypes crh1Δ cells are hypersensitive to Congo red and Calcofluor white; the crh1Δ crh2Δ double mutant is more severely affected, genetically aggravates fks1Δ and gas1Δ wall defects, and shows altered glucan organization rather than major changes in total chitin content. Catalytic-site mutants fail to complement these phenotypes. (rodriguezpena2000anovelfamily pages 3-5, cabib2007crh1pandcrh2p pages 1-2, rodriguezpena2000anovelfamily pages 5-6, cabib2007crh1pandcrh2p pages 9-10) Rodríguez-Peña et al. 2000, MCB (May 2000). https://doi.org/10.1128/mcb.20.9.3245-3255.2000; Cabib et al. 2007, Molecular Microbiology (Feb 2007). https://doi.org/10.1111/j.1365-2958.2006.05565.x
Quantitative cross-linking data In wild type, total cell-wall chitin was estimated at roughly 36–43% free, 15–22% linked to β(1→6)-glucan, and 37–44% linked to β(1→3)-glucan depending on assay. In crh1 crh2 double mutants, virtually all chitin is free; other summaries report WT partitioning of 31% free, 44% β(1→3)-linked, 25% β(1→6)-linked, and ~2× higher alkali-soluble glucan in double mutants. (cabib2009twonoveltechniques pages 6-7, omar2016investigatingtherole pages 41-45, cabib2009twonoveltechniques pages 1-2, cabib2009twonoveltechniques media 0f993bce) Cabib 2009, Eukaryotic Cell (Nov 2009). https://doi.org/10.1128/EC.00228-09; summary/secondary extraction of values in later family overview (omar2016investigatingtherole pages 41-45).
Key methods Functional assignment relied on gene deletion/overexpression, catalytic-site mutagenesis, GFP/HA localization, laminarinase release from walls, radiolabeling with [^14C]-glucosamine/glucose, carboxymethylation, selective β(1→3)- and β(1→6)-glucanase digestion, Sephacryl S-300 chromatography, and newer curdlan-affinity and chitosan extraction assays. These orthogonal methods converged on the same conclusion that Crh1/Crh2 generate all detectable chitin–glucan cross-links. (cabib2007crh1pandcrh2p pages 1-2, cabib2009twonoveltechniques pages 6-7, cabib2009twonoveltechniques pages 1-2, cabib2007crh1pandcrh2p pages 10-12) Cabib et al. 2007, Molecular Microbiology (Feb 2007). https://doi.org/10.1111/j.1365-2958.2006.05565.x; Cabib 2009, Eukaryotic Cell (Nov 2009). https://doi.org/10.1128/EC.00228-09

Table: This table summarizes the core functional annotation of S. cerevisiae CRH1/YGR189C (UniProt P53301), including identity, enzymatic role, localization, regulation, mutant phenotypes, quantitative cross-linking data, and the key experiments that support those conclusions.

Key cited primary sources (with URLs and publication dates)

Key cited recent sources (2023–2024)

References

  1. (rodriguezpena2000anovelfamily pages 3-5): José Manuel Rodríguez-Peña, Víctor J. Cid, Javier Arroyo, and César Nombela. A novel family of cell wall-related proteins regulated differently during the yeast life cycle. Molecular and Cellular Biology, 20:3245-3255, May 2000. URL: https://doi.org/10.1128/mcb.20.9.3245-3255.2000, doi:10.1128/mcb.20.9.3245-3255.2000. This article has 183 citations and is from a domain leading peer-reviewed journal.

  2. (rodriguezpena2000anovelfamily pages 7-9): José Manuel Rodríguez-Peña, Víctor J. Cid, Javier Arroyo, and César Nombela. A novel family of cell wall-related proteins regulated differently during the yeast life cycle. Molecular and Cellular Biology, 20:3245-3255, May 2000. URL: https://doi.org/10.1128/mcb.20.9.3245-3255.2000, doi:10.1128/mcb.20.9.3245-3255.2000. This article has 183 citations and is from a domain leading peer-reviewed journal.

  3. (teparic2013proteinsinvolvedin pages 3-5): R. Teparić and Vladimir Mrša. Proteins involved in building, maintaining and remodeling of yeast cell walls. Current Genetics, 59:171-185, Aug 2013. URL: https://doi.org/10.1007/s00294-013-0403-0, doi:10.1007/s00294-013-0403-0. This article has 70 citations and is from a peer-reviewed journal.

  4. (teparic2013proteinsinvolvedin pages 12-13): R. Teparić and Vladimir Mrša. Proteins involved in building, maintaining and remodeling of yeast cell walls. Current Genetics, 59:171-185, Aug 2013. URL: https://doi.org/10.1007/s00294-013-0403-0, doi:10.1007/s00294-013-0403-0. This article has 70 citations and is from a peer-reviewed journal.

  5. (cabib2007crh1pandcrh2p pages 1-2): Enrico Cabib, Noelia Blanco, Cecilia Grau, José Manuel Rodríguez‐Peña, and Javier Arroyo. Crh1p and crh2p are required for the cross‐linking of chitin to β(1‐6)glucan in the saccharomyces cerevisiae cell wall. Molecular Microbiology, 63:921-935, Feb 2007. URL: https://doi.org/10.1111/j.1365-2958.2006.05565.x, doi:10.1111/j.1365-2958.2006.05565.x. This article has 189 citations and is from a domain leading peer-reviewed journal.

  6. (cabib2009twonoveltechniques pages 6-7): Enrico Cabib. Two novel techniques for determination of polysaccharide cross-links show that crh1p and crh2p attach chitin to both β(1-6)- and β(1-3)glucan in the saccharomyces cerevisiae cell wall. Nov 2009. URL: https://doi.org/10.1128/ec.00228-09, doi:10.1128/ec.00228-09. This article has 106 citations and is from a peer-reviewed journal.

  7. (omar2016investigatingtherole pages 41-45): S Omar. Investigating the role of the crh gene family in magnaporthe oryzae on cell wall integrity and fungal virulence. Unknown journal, 2016.

  8. (fang2019mechanismsofredundancy pages 1-2): Wenxia Fang, Ana Belén Sanz, Sergio Galan Bartual, Bin Wang, Andrew T. Ferenbach, Vladimír Farkaš, Ramon Hurtado-Guerrero, Javier Arroyo, and Daan M. F. van Aalten. Mechanisms of redundancy and specificity of the aspergillus fumigatus crh transglycosylases. Nature Communications, Apr 2019. URL: https://doi.org/10.1038/s41467-019-09674-0, doi:10.1038/s41467-019-09674-0. This article has 55 citations and is from a highest quality peer-reviewed journal.

  9. (cabib2009twonoveltechniques pages 1-2): Enrico Cabib. Two novel techniques for determination of polysaccharide cross-links show that crh1p and crh2p attach chitin to both β(1-6)- and β(1-3)glucan in the saccharomyces cerevisiae cell wall. Nov 2009. URL: https://doi.org/10.1128/ec.00228-09, doi:10.1128/ec.00228-09. This article has 106 citations and is from a peer-reviewed journal.

  10. (cabib2009twonoveltechniques pages 7-10): Enrico Cabib. Two novel techniques for determination of polysaccharide cross-links show that crh1p and crh2p attach chitin to both β(1-6)- and β(1-3)glucan in the saccharomyces cerevisiae cell wall. Nov 2009. URL: https://doi.org/10.1128/ec.00228-09, doi:10.1128/ec.00228-09. This article has 106 citations and is from a peer-reviewed journal.

  11. (cabib2009twonoveltechniques media 0f993bce): Enrico Cabib. Two novel techniques for determination of polysaccharide cross-links show that crh1p and crh2p attach chitin to both β(1-6)- and β(1-3)glucan in the saccharomyces cerevisiae cell wall. Nov 2009. URL: https://doi.org/10.1128/ec.00228-09, doi:10.1128/ec.00228-09. This article has 106 citations and is from a peer-reviewed journal.

  12. (rodriguezpena2000anovelfamily pages 5-6): José Manuel Rodríguez-Peña, Víctor J. Cid, Javier Arroyo, and César Nombela. A novel family of cell wall-related proteins regulated differently during the yeast life cycle. Molecular and Cellular Biology, 20:3245-3255, May 2000. URL: https://doi.org/10.1128/mcb.20.9.3245-3255.2000, doi:10.1128/mcb.20.9.3245-3255.2000. This article has 183 citations and is from a domain leading peer-reviewed journal.

  13. (rodriguezpena2000anovelfamily pages 9-10): José Manuel Rodríguez-Peña, Víctor J. Cid, Javier Arroyo, and César Nombela. A novel family of cell wall-related proteins regulated differently during the yeast life cycle. Molecular and Cellular Biology, 20:3245-3255, May 2000. URL: https://doi.org/10.1128/mcb.20.9.3245-3255.2000, doi:10.1128/mcb.20.9.3245-3255.2000. This article has 183 citations and is from a domain leading peer-reviewed journal.

  14. (cabib2007crh1pandcrh2p pages 9-10): Enrico Cabib, Noelia Blanco, Cecilia Grau, José Manuel Rodríguez‐Peña, and Javier Arroyo. Crh1p and crh2p are required for the cross‐linking of chitin to β(1‐6)glucan in the saccharomyces cerevisiae cell wall. Molecular Microbiology, 63:921-935, Feb 2007. URL: https://doi.org/10.1111/j.1365-2958.2006.05565.x, doi:10.1111/j.1365-2958.2006.05565.x. This article has 189 citations and is from a domain leading peer-reviewed journal.

  15. (cabib2007crh1pandcrh2p pages 10-12): Enrico Cabib, Noelia Blanco, Cecilia Grau, José Manuel Rodríguez‐Peña, and Javier Arroyo. Crh1p and crh2p are required for the cross‐linking of chitin to β(1‐6)glucan in the saccharomyces cerevisiae cell wall. Molecular Microbiology, 63:921-935, Feb 2007. URL: https://doi.org/10.1111/j.1365-2958.2006.05565.x, doi:10.1111/j.1365-2958.2006.05565.x. This article has 189 citations and is from a domain leading peer-reviewed journal.

  16. (cabib2009twonoveltechniques media c7aa73a2): Enrico Cabib. Two novel techniques for determination of polysaccharide cross-links show that crh1p and crh2p attach chitin to both β(1-6)- and β(1-3)glucan in the saccharomyces cerevisiae cell wall. Nov 2009. URL: https://doi.org/10.1128/ec.00228-09, doi:10.1128/ec.00228-09. This article has 106 citations and is from a peer-reviewed journal.

  17. (cabib2009twonoveltechniques media 283cf6bf): Enrico Cabib. Two novel techniques for determination of polysaccharide cross-links show that crh1p and crh2p attach chitin to both β(1-6)- and β(1-3)glucan in the saccharomyces cerevisiae cell wall. Nov 2009. URL: https://doi.org/10.1128/ec.00228-09, doi:10.1128/ec.00228-09. This article has 106 citations and is from a peer-reviewed journal.

  18. (cabib2009twonoveltechniques media d429ca82): Enrico Cabib. Two novel techniques for determination of polysaccharide cross-links show that crh1p and crh2p attach chitin to both β(1-6)- and β(1-3)glucan in the saccharomyces cerevisiae cell wall. Nov 2009. URL: https://doi.org/10.1128/ec.00228-09, doi:10.1128/ec.00228-09. This article has 106 citations and is from a peer-reviewed journal.

  19. (holyavkin2023genomictranscriptomicand pages 8-9): Can Holyavkin, Burcu Turanlı-Yıldız, Ülkü Yılmaz, Ceren Alkım, Mevlüt Arslan, Alican Topaloğlu, Halil İbrahim Kısakesen, Gustavo de Billerbeck, Jean Marie François, and Z. Petek Çakar. Genomic, transcriptomic, and metabolic characterization of 2-phenylethanol-resistant saccharomyces cerevisiae obtained by evolutionary engineering. Frontiers in Microbiology, Apr 2023. URL: https://doi.org/10.3389/fmicb.2023.1148065, doi:10.3389/fmicb.2023.1148065. This article has 38 citations and is from a peer-reviewed journal.

Artifacts

Citations

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  2. fang2019mechanismsofredundancy pages 1-2
  3. rodriguezpena2000anovelfamily pages 7-9
  4. rodriguezpena2000anovelfamily pages 5-6
  5. holyavkin2023genomictranscriptomicand pages 8-9
  6. teparic2013proteinsinvolvedin pages 3-5
  7. rodriguezpena2000anovelfamily pages 3-5
  8. teparic2013proteinsinvolvedin pages 12-13
  9. cabib2009twonoveltechniques pages 6-7
  10. cabib2009twonoveltechniques pages 1-2
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  13. ^14C
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