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Updated: Apr 14, 2026

Study of Protein-protein Interactions in Autophagy Research
Published on: September 9, 2017
Unravelling chaperone-mediated microautophagy targeting KFERQ-like motif containing proteins in yeast
Krishna Upadhayay1,2, Pushpender Bhardwaj1,3, Namra Farooqi1,2
1Protein Science and Engineering, Council of Scientific and Industrial Research-Institute of Microbial Technology, Chandigarh, India.
Abstract:
Under prolonged starvation, mammalian cells activate chaperone-mediated autophagy (CMA) that degrades cellular proteins containing KFERQ-like motifs via lysosomes. During CMA, the lysosomal membrane protein LAMP2A acts as an essential receptor for the HSPA8/HSC70-CMA substrate complex. Thus, the evidence of CMA in organisms lacking LAMP2A on lysosomes/vacuoles is still lacking. Here, we examined the fate of proteins containing such motifs in S. cerevisiae that lack the CMA receptor on vacuoles. Intriguingly, we found that even in the absence of LAMP2A, proteins containing such motifs translocate into vacuoles upon prolonged starvation. We report for the first time that phosphatidylserine acts as an Hsp70-family protein-substrate receptor on the vacuolar membrane to facilitate the substrate translocation into vacuoles. As the newly discovered degradation pathway is dependent upon cytosolic Hsp70 (as in CMA) as well as the ESCRT complex, and involves invagination of the vacuolar membrane, we refer to it as chaperone-mediated microautophagy. Taken together, this study has led to the identification of a novel cellular pathway in S. cerevisiae that facilitates the clearance of cellular proteins under chronic stress.Abbreviations: CMA: chaperone-mediated autophagy; CMA-tag: KFERQ motif; ESCRT: endosomal sorting complexes required for transport; GAPDH: glyceraldehyde-3-phosphate dehydrogenase; GFP: green fluorescent protein; HSPA8: heat shock protein 8; LAMP2A: lysosomal-associated membrane protein type 2A; Lact-C2: lactadherin C2 domain; PAmCherry: photoactivatable mCherry; PBS: phosphate-buffered saline; PS: phosphatidylserine; PtdIns4P: phosphatidylinositol-4-phosphate; RFP: red fluorescent protein; TBST: Tris-buffered saline with Tween 20.
Insights
Yeast cells lacking LAMP2A still degrade proteins with KFERQ-like motifs during starvation. Phosphatidylserine acts as a receptor, facilitating this novel chaperone-mediated microautophagy pathway for cellular protein clearance.
Area of Science:
- Cellular Biology
- Molecular Biology
- Biochemistry
Background:
- Chaperone-mediated autophagy (CMA) degrades proteins with KFERQ-like motifs via lysosomes, requiring the LAMP2A receptor.
- Evidence for CMA-like pathways in organisms lacking vacuolar LAMP2A is limited.
Purpose of the Study:
- To investigate the degradation of KFERQ-like motif proteins in Saccharomyces cerevisiae, which lacks LAMP2A on vacuoles.
- To identify novel cellular pathways for protein clearance under starvation stress.
Main Methods:
- Utilized S. cerevisiae lacking vacuolar LAMP2A.
- Investigated the translocation of KFERQ-like motif proteins into vacuoles.
- Examined the role of phosphatidylserine and Hsp70 family proteins.
- Assessed the involvement of the ESCRT complex and vacuolar membrane invagination.
Main Results:
- Proteins with KFERQ-like motifs translocate into yeast vacuoles even without LAMP2A during prolonged starvation.
- Phosphatidylserine functions as a novel Hsp70-family protein-substrate receptor on the vacuolar membrane.
- The newly identified pathway, termed chaperone-mediated microautophagy, depends on cytosolic Hsp70 and the ESCRT complex.
Conclusions:
- Discovered a novel chaperone-mediated microautophagy pathway in S. cerevisiae for clearing cellular proteins under chronic stress.
- This pathway facilitates substrate translocation into vacuoles independently of LAMP2A, utilizing phosphatidylserine as a receptor.
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