bioRxiv Science⌕ Search

Biology subjects

Liu, T.-H.

Publications and source records attributed to Liu, T.-H..

3 recordsLinked to original sources

Dynamic evolution of AT-rich isochores shapes the genome of an intertidal fungus Annulohypoxylon annulatoides

Marine and coastal fungi experience intense environmental variability, yet the genomic mechanisms enabling filamentous fungi to tolerate such conditions remain unclear. From 56 fungal isolates collected along the Lailai rocky shore in northern Taiwan, we selected Annulohypoxylon annulatoides for deeper investigation due to its prevalence and distinctive stress response. Phenotypic assays revealed that this strain exhibits distinct growth and recovery dynamics under salinity, temperature, and UV stress compared to conspecific strains isolated from tree bark. To investigate the genomic basis of its adaptation, we generated a high-quality 41.8 Mbp de novo genome assembly with 11,529 predicted proteins. Across Hypoxylaceae genomes, we identified variably sized and dispersed AT-rich isochores, which in A. annulatoides were enriched in repeats and displayed low gene density. Despite differences in AT content, core gene content and Pfam domain profiles remained conserved. These AT-rich isochores exhibit several sequence and structural features consistent with scaffold/matrix attachment regions (S/MARs), raising the possibility that they influence higher-order genome organisation. Comparative analyses suggest they arose through independent repeat insertions or via ancestral repeat amplifications. Together, our findings point to a role for AT-rich isochores in shaping genome architecture and potentially mediating stress-responsive regulation, supporting the broader environmental flexibility observed in Hypoxylaceae, including adaptation to dynamic coastal habitats.

genomics↗

Distinct effects of CDK8 module subunits on cellular growth and proliferation in Drosophila

The Mediator complex, composed of about 30 conserved subunits, plays a pivotal role in facilitating RNA polymerase II-dependent transcription in eukaryotes. Within this complex, the CDK8 kinase module (CKM), comprising Med12, Med13, CDK8, and CycC (Cyclin C), serves as a dissociable subcomplex that modulates the activity of the small Mediator complex. Genetic studies in Drosophila have revealed distinct phenotypes of CDK8-CycC and Med12-Med13 mutations, yet the underlying mechanism has remained unknown. Here, using Drosophila as a model organism, we show that depleting CDK8-CycC enhances E2F1 target gene expression and promotes cell-cycle progression. Conversely, depletion of Med12-Med13 affects the expression of ribosomal protein genes and fibrillarin, indicating a more severe reduction in ribosome biogenesis and cellular growth compared to the loss of CDK8-CycC. Moreover, we found that the stability of CDK8 and CycC relies on Med12 and Med13, with a mutually interdependent relationship between Med12 and Med13. Furthermore, CycC stability depends on the other three CKM subunits. These findings reveal distinct roles for CKM subunits in vivo, with Med12-Med13 disruption exerting a more pronounced impact on ribosome biogenesis and cellular growth compared to the loss of CDK8-CycC. SignificanceThe CDK8 kinase module (CKM), comprising CDK8, CycC, Med12, and Med13, is essential in the Mediator complex for RNA polymerase II-dependent transcription in eukaryotes. While expected to function jointly, CKM subunit mutations result in distinct phenotypes in Drosophila. This study investigates the mechanisms driving these differing effects. Our analysis reveals the role of Med12-Med13 pair in regulating ribosomal biogenesis and cellular growth, contrasting with the involvement of CDK8-CycC in E2F1-dependent cell-cycle progression. Additionally, an asymmetric interdependence in the stability of CDK8-CycC and Med12-Med13 was observed. CKM mutations or overexpression are associated with cancers and cardiovascular diseases. Our findings underscore the distinct impacts of CKM mutations on cellular growth and proliferation, advancing our understanding of their diverse consequences in vivo.

cell biology↗

Wingless signaling promotes lipid mobilization through signal-induced transcriptional repression

Conserved Wnt/Wingless signaling plays pivotal roles in regulating normal development and energy metabolism in metazoans, and aberrant activation of Wnt signaling drives the pathogenesis of many diseases including cancer. However, the role of Wnt signaling in regulating cellular lipid homeostasis, particularly lipid mobilization, remains poorly understood. Here we show that canonical Wg signaling inhibits lipid accumulation in Drosophila larval adipocytes by stimulating lipid catabolism while simultaneously inhibiting lipogenesis. Using a combination of RNA-sequencing and CUT&RUN assays, we identified a battery of Wg target genes encoding key factors required for lipogenesis (such as FASN1 and AcCoS), lipolysis (such as lipid droplet-associated proteins Lsd-1 and Lsd-2), and fatty acid {beta}-oxidation in the mitochondria and peroxisome (e.g., CPT1 and CRAT), most of which are directly repressed by active Wg signaling. Furthermore, lipid accumulation defects caused by active Wg signaling are rescued by either ectopically expressing Lsd-1 and Lsd-2 or depleting the transcriptional repressor Aef1, whose binding motif was identified in 52% of Wg signaling-repressed genes. These findings suggest that active Wg signaling reduces intracellular lipid accumulation by inhibiting lipogenesis and fatty acid {beta}-oxidation and by promoting lipolysis and lipid mobilization, and Wg signaling-induced transcriptional repression play a prominent role in these converging mechanisms.

cell biology↗