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Krishna, C. K.

Publications and source records attributed to Krishna, C. K..

2 recordsLinked to original sources

Evolutionary Remodelling of a Remnant GET-Pathway Factor into PEX38, a Novel and Essential Peroxin in Euglenozoa

PEX19 is a cytosolic receptor that directs membrane proteins post-translationally to peroxisomes, as well as to mitochondria, lipid droplets, and the endoplasmic reticulum. A comprehensive Trypanosoma PEX19 interactome analysis uncovered PEX38 as a novel and essential Euglenozoa-specific peroxin. PEX38 contains distinct domains that bind the co- chaperone Hip and the PEX3-binding motif of PEX19, suggesting a role in stabilizing membrane protein and preventing premature membrane docking. PEX38 illustrates functional repurposing in organelle biogenesis. It originated from a remnant of the GET/TRC pathway, typically responsible for the targeting of tail-anchored proteins to the endoplasmic reticulum. While most components of this machinery are absent in Euglenozoa, PEX38 has been retained and adapted to mediate peroxisomal membrane protein targeting. This evolutionary adaptation is unique to Euglenozoa. Because the PEX19-PEX38 interaction is essential for parasite viability and PEX38 has no human homologs, this complex is a promising therapeutic target against trypanosomatid parasites.

cell biology↗

High confidence glycosomal membrane protein inventory unveils trypanosomal Peroxin PEX15

Infections by trypanosomatid parasites cause Chagas disease, Human African Trypanosomiasis, and Leishmaniasis, affecting over 12 million people worldwide. Glycosomes, the unique peroxisome-related organelles of trypanosomes are essential for their survival, and hence their metabolic functions and biogenesis mediated by peroxins (PEX) are suitable as drug targets. Here we report on a comprehensive protein inventory of glycosomal membranes through advanced subcellular membrane protein profiling employing quantitative mass spectrometry. Our quantitative analysis resulted in the identification of 28 novel high confidence glycosomal membrane proteins. Our in-depth protein inventory of glycosomal membranes serves as an important resource for characterizing glycosome biology and drug development. We validated four so far unknown glycosomal membrane proteins, including two tail-anchored (TA) proteins, a homolog of human peroxisomal PXMP4, and a Macrodomain-containing protein. Using a structure-based approach, we identified one of the TA proteins as the long-sought Trypanosoma PEX15. Despite its low sequence similarity, Trypanosoma PEX15 exhibits structural and topological similarities with its yeast (Pex15) and human counterparts (PEX26). We show that PEX15 is an essential integral glycosomal membrane protein that interacts with PEX6. Accordingly, RNAi knockdown of PEX15 in bloodstream form trypanosomes demonstrates that it is essential for glycosome biogenesis and parasite survival. Considering the low degree of conservation with its human counterpart, PEX15 is a promising molecular target for drug development.

cell biology↗