Search bioRxivSearch

Biology subjects

Bhattacharya, D.

Publications and source records attributed to Bhattacharya, D..

3 recordsLinked to original sources

Proteomic analysis of Stony Coral Tissue Loss Disease demonstrates coral-algal dysbiosis during disease progression

Stony Coral Tissue Loss Disease (SCTLD) has devastated Caribbean reefs, yet the host molecular response to infection is poorly understood. Previous gene expression studies of diseased corals identified shifts in the immune response, apoptosis, and coral-algal dysbiosis. Here, we characterized the proteomic response of Diploria labyrinthiformis to SCTLD by comparing protein abundance in healthy tissue from uninfected colonies and apparently healthy and neighboring diseased tissue from infected colonies. These results were compared with existing metagenomic data from the same samples that previously demonstrated significant shifts in the coral microbiome due to SCTLD. We identified 480 differentially abundant proteins when comparing diseased lesion and healthy tissues, but only 12 between apparently healthy and healthy tissues. Pathway-level analysis provides evidence of immune suppression in apparently healthy tissue, suggesting that host molecular responses precede visible disease progression. Diseased lesion tissues showed wound-healing responses combined with a decreased abundance of proteins involved in symbiosome maintenance and increased oxidative stress responses, consistent with host-algal dysbiosis. This result correlates with the previous metagenomic analysis of these samples which found that infected colonies exhibit distinct algal symbiont communities dominated by Symbiodinium necroappetens, whereas healthy colonies are dominated by Durusdinium trenchii and Breviolum spp. Comparison with existing transcriptomic studies revealed both shared and distinct molecular responses, underscoring the importance of integrating multi-omics approaches to understand coral diseases. Our results suggest that SCTLD in D. labyrinthiformis is associated with early immune suppression, coral-algal dysbiosis, oxidative stress, and subsequent wound-healing responses.

ecology

Strain maps characterize the symmetry of convergence and extension patterns during Zebrafish gastrulation

During gastrulation of the zebrafish embryo, the cap of blastoderm cells organizes into the axial body plan of the embryo with left-right symmetry and head-tail, dorsal-ventral polarities. Our labs have been interested in the mechanics of early development and have investigated whether these large-scale cells movements can be described as tissue-level mechanical strain by a tectonics-based approach. The first step is to image the positions of all nuclei from mid-epiboy to early segmentation by digital sheet light microscopy (DSLM), organize the surface of the embryo into multi-cell spherical domains, construct velocity fields from the movements of these domains and extract 3D strain rate maps. Tensile/expansive and compressive strains in the axial and equatorial directions are detected during gastrulation as anterior and posterior expansion along the anterior-posterior axis and medial-lateral compression across the dorsal-ventral axis corresponding to convergence and extension. In later stages in development are represented by localized medial expansion at the onset of segmentation and anterior expansion at the onset of neurulation. Symmetric patterns of rotation are first detected in the animal hemispheres at mid-epiboly and then the vegetal hemispheres by the end of gastrulation. By analysing the temporal sequence of large scale movements, deformations across the embryo can be attributed to a combination of epiboly and dorsal convergence-extension.\n\nSignificanceStrain is an emergent property of tissues that originates from the mechanical coupling of cell-cell and cell-substrate interactions, individual cell shape changes, and cell level forces. By imaging the positions of nuclei from mid-epiboly to early segmentation of the zebrafish embryo we are able to calculate three types of strain maps by a plate tectonics based method. The regions of expansive and compressive axial and equatorial strain correspond to areas undergoing convergence and extension, a major step in the formation of the embryonic body plan as well as the formation of somite and head structures. The most striking signatures of strain are: 1. the bilateral symmetry of linear strain across the anterior-posterior, dorsal-ventral axis during gastrulation, 2. the complementary counter-rotational strains or curl in the animal hemisphere at mid epiboly, and 3. a divergence or saddle point in the region of the dorsal organizer, head-trunk boundary. These strains represent a general method to describe large-scale tissue-level mechanics not only of embryonic development but also tissue homeostasis and disease.

biophysics

Kingdom-wide comparison reveals conserved diurnal gene expression in Archaeplastida

Plants have adapted to the diurnal light-dark cycle by establishing elaborate transcriptional programs that coordinate innumerable metabolic, physiological, and developmental responses to the external environment. These transcriptional programs have been studied in only a few species, and their function and conservation across algae and plants is currently unknown. We performed a comparative transcriptome analysis of the diurnal cycle of nine members of Archaeplastida, and we observed that, despite large phylogenetic distances and dramatic differences in morphology and lifestyle, diurnal transcriptional programs of these organisms are similar. However, the establishment of multicellularity coincided with the uncoupling of cell division from the diurnal cycle and decreased diurnal control of the expression of the biological pathways. Hence, our study provides evidence for the universality of diurnal gene expression and elucidates its evolutionary history among different photosynthetic eukaryotes.

evolutionary biology