Search bioRxivSearch

Biology subjects

Shao, Z.

Publications and source records attributed to Shao, Z..

2 recordsLinked to original sources

Sub-kb resolution Hi-C in D. melanogaster reveals conserved characteristics of TADs between insect and mammalian cells

Topologically associating domains (TADs) are fundamental elements of the 3D structure of the eukaryotic genome. However, while the structural importance of the insulator protein CTCF together with cohesin at TAD borders in mammalian cells is well established, the absence of such co-localization at most TAD borders in recent Hi-C studies of D. melanogaster is enigmatic, raising the possibility that these TAD border elements are not generally conserved among metazoans. Using in situ Hi-C with sub-kb resolution, we show that the genome of D. melanogaster is almost completely partitioned into more than 4,000 TADs (median size, 13 kb), nearly 7-fold more than previously identified. The overwhelming majority of these TADs are demarcated by pairs of Drosophila specific insulator proteins, BEAF-32/CP190 or BEAF-32/Chromator, indicating that these proteins may play an analogous role in Drosophila as that of the CTCF/cohesin pair in mammals. Moreover, we find that previously identified TADs enriched for inactive chromatin are predominantly assembled from the higher-level interactions between smaller TADs. In contrast, the contiguous small TADs in regions previously thought to be unstructured \"inter-TADs\" are organized in an open configuration with far fewer TAD-TAD interactions. Such structures can also be identified in some \"inter-TAD\" regions of the mammalian genome, suggesting that larger assemblages of small self-associating TADs separated by a \"burst\" of contiguous small, weakly associating TADs may be a conserved, basic characteristic of the higher order folding of the metazoan genome.

genomics

Autophagy mitigates high-temperature injury during microsporogenesis in Arabidopsis thaliana

Autophagy is one of the cellular processes that break down cellular components during senescence, starvation, and stress. The susceptibility of plant pollen development to high-temperature (HT) stress is well known, but the involvement of autophagy in HT injury is yet to be clarified. Here, we found that following transfer to 30 {degrees}C, all autophagy-deficient (atg) mutants (atg2-1, 5-1, 7-2, and 10-1) of Arabidopsis thaliana tested displayed visibly impaired pollen development and anther dehiscence. HT-induced male sterility significantly increased in the atg mutants, but the degree of HT-induced obstacles did not change between the wild type (WT) and mutants from the seedling stage to the bolting stage. Cytological analyses showed that 30 {degrees}C promoted autophagy and autolysosome formation in both anther wall cells and microspores in developing anthers of WT, but the atg5-1 mutant did not show completion of tapetum degeneration and microspore maturation. HT upregulated hydrogen peroxide and dehydroascorbate reductase 1 production in both WT and atg5-1 anthers, but the basal levels were already higher in the mutant. HT repressed expression of UNDEAD and its regulator MYB80, which are required for tapetal programmed cell death (PCD) for proper pollen development. Taken together, our results suggest that autophagy functions in tapetum degeneration and pollen development during HT-caused tapetal PCD abortion.\n\nHighlightsO_LIIn Arabidopsis, autophagy is not essential for completion of the life cycle under normal temperatures.\nC_LIO_LIHigh temperature (HT) stress induces autophagy in developing anther wall cells and microspores.\nC_LIO_LIAutophagy deficient atg mutants become almost completely male-sterile at moderate HT.\nC_LIO_LIAutophagy plays a role in tapetum degeneration and pollen development during HT-caused abortion of tapetal program cell death.\nC_LI

plant biology