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Sylman, M.

Publications and source records attributed to Sylman, M..

2 recordsLinked to original sources

Evolution of a genome-architecture-encoded gene regulation system in trypanosomatids

Transcriptional regulation of protein-coding genes is a hallmark of eukaryotic gene expression. Yet, a group of parasitic protists, trypanosomatids, appear to lack this capability. Here, we analyzed genomic, nascent transcriptomic, RNA polymerase occupancy and gene organization data to reconstruct the evolutionary origin and biological consequences of their unusual regulatory strategy. Across 59 Discoba protists, we show stepwise evolutionary erosion of conventional transcription regulation components in trypanosomatida lineage, including gene consolidation into polycistronic transcription units (PTUs), shortening of intra-PTU non-coding regions, and depletion of transcription factors and their enriched DNA-binding motifs. This transition was associated with near-constitutive expression of most genes, indicating broad loss of conditional gene expression. However, trypanosomatids retain some differential regulation at the PTU level, with >70% PTUs featuring significantly different nascent transcription than their neighbors or resident chromosomes. Moreover, gene expression is not uniform within PTUs: nascent transcription, translation efficiency, and protein abundance progressively decline with distance from the transcription start site. Consistent with this architecture-encoded regulatory logic, co-complex subunits and co-pathway enzymes preferentially occupy adjacent positions within PTUs despite each PTUs overall functional heterogeneity. These findings reveal an evolutionary shift from gene-specific transcriptional regulation toward a regime where genome architecture becomes a regulator of gene expression.

evolutionary biology↗

The evolutionary origin of host association and polycistronic transcription in trypanosomatids

Trypanosomatids (Kinetoplastids) encompass multiple lineages of parasitic protists with monoxenous or dixenous life cycles, infecting insects, vertebrates, and plants; in vertebrate hosts, some are intracellular, while others are extracellular. To understand the origin and diversification of their host associations, we integrated comparative genomics across 47 genomes. Results highlight that monoxenous, extracellular trypanosomatids originated from predatory ancestors through reductive evolution, which diminished their metabolic and hunting capabilities. Intracellularity and dixenous lifestyle convergently originated three times independently. Progressive consolidation of genes into polycistronic transcription units (PTUs) was a central innovation that began in early Glycomonada and expanded through chromosome fission-fusion and gene relocation/inversion. In present-day PTUs, protein complex subunits and metabolic pathway enzymes are positioned for co-expression in temporal synchrony, and chromosomes minimize colinear PTUs to counter transcriptional readthrough. Together, these results provide a time-resolved origin of host-association and polycistronic transcription in trypanosomatids, possibly through an intermediate phase of facultative parasitism.

evolutionary biology↗