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Gomez Gil, E.

Publications and source records attributed to Gomez Gil, E..

2 recordsLinked to original sources

Horizontal gene transfer-initiated reorganization of lipid metabolism drives lifestyle innovation in a eukaryote

Horizontal gene transfer is a source of metabolic innovation and adaptation to new environments. Yet, how horizontally transferred metabolic functionalities are integrated into host cell biology remains an open question. Here, we use the fission yeast Schizosaccharomyces japonicus to probe how eukaryotic lipid metabolism is rewired in response to the acquisition of a horizontally transferred squalene-hopene cyclase Shc1. We show that Shc1-dependent production of hopanoids, the structural mimics of eukaryotic sterols, allows S. japonicus to thrive in anoxia, where sterol biosynthesis is not possible. We further demonstrate that glycerophospholipid fatty acyl asymmetry, prevalent in S. japonicus, is crucial for accommodating both sterols and hopanoids in membranes, and explain how Shc1 functions alongside the native sterol biosynthetic pathway to support membrane properties. Through engineering experiments in the sister species S. pombe, which naturally lacks Shc1, we show that the acquisition of Shc1 may entail new physiological traits; however, to maximize Shc1 performance, sterol biosynthesis must be dampened. Our work sheds new light on the mechanisms underlying cellular integration of horizontally transferred genes in eukaryotes and provides broader insights into the evolution of membrane organization and function.

cell biology↗

Schizosaccharomyces versatilis represents a distinct evolutionary lineage.

The fission yeast species Schizosaccharomyces japonicus is currently divided into two varieties - S. japonicus var. japonicus and S. japonicus var. versatilis. Here we examine the var. versatilis isolate CBS5679. The CBS5679 genome shows 88% coding sequence identity to the reference genome of S. japonicus var. japonicus at the coding sequence level, with phylogenetic analyses suggesting that it has split from the S. japonicus lineage 25 million years ago. The CBS5679 genome contains a reciprocal translocation between chromosomes 1 and 2, together with several large inversions. The products of genes linked to the major translocation are associated with "metabolism" and "cellular assembly" ontology terms. We further show that CBS5679 does not generate viable progeny with the reference strain of S. japonicus. Although CBS5679 shares closer similarity to the "type" strain of var. versatilis as compared to S. japonicus, it is not identical to the type strain, suggesting population structure within var. versatilis. We recommend that the taxonomic status of S. japonicus var. versatilis is raised, with it being treated as a separate species, Schizosaccharomyces versatilis. Take-awayO_LIThe taxonomic status of Schizosaccharomyces versatilis is addressed. C_LIO_LIS. versatilis diverged from S. japonicus around 25 million years ago. C_LIO_LIS. versatilis does not produce viable progeny in crosses with S. japonicus. C_LIO_LIS. versatilis has a reciprocal translocation between chromosomes 1 and 2. C_LIO_LIThe Gene Ontology terms for genes in the translocations are enriched for terms connected to "metabolism" and "cellular assembly". C_LI

evolutionary biology↗