| Literature DB >> 24710476 |
Abstract
The budding yeast Saccharomyces cerevisiae responds to nutritional stress through the regulated activities of signaling pathways mediating autophagy and other conserved cellular processes. Autophagy has been studied intensely in yeast, where over 30 autophagy-related genes have been identified with defined roles enabling the formation of autophagic vesicles and their subsequent trafficking to the central yeast vacuole. Much less, however, is known regarding the regulatory mechanisms through which autophagy is integrated with other yeast stress responses. Nitrogen limitation initiates autophagy and pseudohyphal growth in yeast, the latter being a fascinating stress response characterized by the formation of multicellular chains or filaments of elongated cells. An increasing body of evidence suggests an interrelationship between processes responsive to nitrogen stress with cAMP-dependent PKA and the TOR kinase complex acting as key regulators of autophagy, pseudohyphal growth, and endocytosis. In this review, we will summarize our current understanding of the regulatory events controlling these processes. In particular, we explore the interplay between autophagy, polarized pseudohyphal growth, and to a lesser extent endocytosis, and posit that the integrated response of these processes in yeast is a critical point for further laboratory experimentation as a model of cellular responses to nitrogen limitation throughout the Eukaryota.Entities:
Year: 2012 PMID: 24710476 PMCID: PMC3901118 DOI: 10.3390/cells1030263
Source DB: PubMed Journal: Cells ISSN: 2073-4409 Impact factor: 6.600
Figure 1Overview of the basic steps in the autophagy and cytoplasm to vacuole (CVT) pathways in yeast. Critical steps are depicted graphically and indicated with arrows; proteins involved in a particular step are shown in boxes.
Summary of autophagy-related genes with potential contributions to filamentous growth.
| Gene | Autophagy Process | Protein Function/Description | Transcript Levels in Early Fil. Growth | Deletion (Δ)/Overexpression (OE) Phenotype |
|---|---|---|---|---|
|
| Induction; retrieval | Protein kinase | Increased | Decreased fil. growth (OE); Exaggerated fil. growth (Δ) |
|
| Vesicle expansion and completion | Conjugation enzyme | Increased | Decreased fil. growth (OE) |
|
| Vesicle expansion and completion | Cysteine protease | Increased | Wild-type fil. growth (OE) |
|
| Vesicle expansion and completion | Conjugation enzyme | Increased | Untested |
|
| Vesicle nucleation | PI3P binding | Increased | Wild-type fil. growth (OE) |
|
| Vesicle expansion and completion | Activating enzyme | Increased | Decreased fil. growth (OE); Exaggerated fil. growth (Δ) |
|
| Vesicle expansion/completion | Ubiquitin-like protein | Increased | Untested |
|
| Vesicle nucleation; retrieval | Integral membrane protein | Increased | Untested |
|
| Vesicle nucleation | PI3-Kinase complex | Increased | Untested |
|
| Induction | Atg1p modulator | Increased | Decreased fil. growth (OE) |
|
| Induction | PI3P binding | Increased | Decreased fil. growth (OE) |
|
| Induction | PI3P binding | Increased | Untested |
|
| Cvt pathway | PI3P binding | Increased | Untested |
|
| Efflux from the vacuole | Vacuolar permease | Increased | Untested |
|
| Cvt pathway | PI3P binding | Unchanged | Decreased fil. growth (OE) |
|
| Autophagic body breakdown | Vacuolar membrane protein | Unchanged | Decreased fil. growth (OE) |
|
| Peroxisome sequestration | UDP-glucose | Unchanged | Decreased fil. growth (OE) |
Figure 2Overview of TORC1 signaling pathways. Relevant regulatory connections are highlighted contributing to yeast pseudohyphal growth, autophagy, and endocytosis. Dashed lines indicate effects that encompass additional unlisted proteins.
Figure 3Overview of the Ras/PKA pathway and relevant regulatory connections involved in the yeast pseudohyphal growth and autophagy responses.