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Rangarajan, P. N.

Publications and source records attributed to Rangarajan, P. N..

3 recordsLinked to original sources

Minus one frameshifted puromycin N-acetyltransferase is targeted to the nucleolus: sporadic but reproducible chimera formation by a transfected Lc3b construct

Map1Lc3b is a protein that has pivotal functions in cellular autophagy. At least three groups in the past decade have reported its presence in the nucleoli of cells, but its functions in that organelle remain unknown. We isolated a few clonal populations of cells stably expressing V5-tagged mouse Lc3b highly enriched in the nucleoli, but the frequency of occurrence of such clones was strikingly low. The phenomenon was readily reproducible, though the protein in the nucleolus puzzlingly had varying molecular masses in different clones but consistently displayed a very strong interaction with the mitochondrial protein C1qbp, which has well-documented functions in the nucleolus. We investigated further and discovered that, in at least one of the clones, Lc3b had formed a chimera with the puromycin resistance gene in the plasmid, plausibly by illegitimate recombination during or after integration of the construct into the cellular genomic DNA. The -1 shifted reading frame of puromycin N-acetyltransferase (pac) can encode a protein that is equally long as the one encoded by the complete pac ORF, but is targeted to the nucleoli due to a drastic shift in the isoelectric point (pI). Notably, this set of events again brings into focus the low threshold often reported for recombination events to occur in eukaryotic cells, the multiple factors influencing them, and calls for increased vigilance in experiments involving DNA transfection and gene targeting.

cell biology↗

Function and regulation of an aldehyde dehydrogenase essential for ethanol and methanol metabolism of the yeast,Komagataella phaffii

The genome of the methylotrophic yeast, Komagataella phaffii harbours multiple genes encoding putative alcohol dehydrogenases and aldehyde dehydrogenases (ALDs). Here, we demonstrate that one of the ALDs denoted as ALD-A is essential for ethanol metabolism. A zinc finger transcription factor known as Mxr1p regulates ALD-A transcription by binding to Mxr1p response elements (MXREs) in the ALD-A promoter. Mutations which abrogate Mxr1p binding to ALD-A MXREs in vitro abolish transcriptional activation from ALD-A promoter in vivo. Mxr1p regulates ALD-A expression during ethanol as well as methanol metabolism. ALD-A is essential for the utilization of methanol and{Delta} ald-a is deficient in alcohol oxidase (AOX), a key enzyme of methanol metabolism. AOX protein but not mRNA levels are down regulated in{Delta} ald-a. ALD-A and AOX localize to cytosol and peroxisomes respectively during methanol metabolism suggesting that they are unlikely interact with each other in vivo. This study has led to the identification of Mxr1p as a key regulator of ALD-A transcription during ethanol and methanol metabolism of K. phaffii. Post-transcriptional regulation of AOX protein levels by ALD-A during methanol metabolism is another unique feature of this study.

molecular biology↗

Apolipoprotein L9 interacts with LC3/GABARAP and is a microtubule-associated protein with a widespread subcellular distribution

Mouse Apolipoprotein L9 is a 34-kDa phosphatidylethanolamine (PE)-binding protein. The gene is present only in mouse and rat genomes; hence it is taxonomically restricted. To understand why, it is essential to uncover details about its functions in cellular processes. Here we show that ApoL9 interacts with the proteins of the LC3 and GABARAP subfamilies, which are key players in macroautophagy. In amino-acid starved cells it preferentially interacts with lipidated LC3B, likely by binding to its PE moiety. On treatment with autophagy inhibitors bafilomycin A1 and chloroquine, ApoL9 is found near swollen mitochondria and on lysosomes/LAMP1-positive compartments. However, ApoL9 itself does not seem to be degraded as a result of autophagy, suggesting that it is not an autophagy cargo receptor. Deletions in a putative transmembrane region between amino acids 110 and 145 abolish PE-binding. In addition, ApoL9 can redistribute to stress granules, can homooligomerize, and is a microtubule-associated protein. In short, its distribution in the cell is quite widespread, suggesting that it could have functions at the intersection of membrane binding and reorganization, autophagy, cellular stress and intracellular lipid transport.\n\nSummary statementThis article is about how Apolipoprotein L9, a lipid-binding protein, has versatile properties and influences a variety of processes taking place inside an animal cell.

cell biology↗