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Chandrasekar, S.

Publications and source records attributed to Chandrasekar, S..

6 recordsLinked to original sources

Salmonberry Transcriptome Reveals Phylogeny and Novel Badnavirus Species

The Rosaceae family comprises thousands of species across over 100 genera, including Salmonberry (Rubus spectabilis), a Pacific Northwest native within the diverse Rubus genus. Its berries and leaves are used for food and medicinal purposes, and ecologically it functions as a pioneer species that supports biodiversity and limits erosion. Although many Rubus genomes were sequenced and analyzed, salmonberry remains undercharacterized: despite a recently sequenced genome, no publicly available annotation or gene expression analysis currently exists. Here, we used RNA sequencing to characterize the salmonberry leaf transcriptome and examine its phylogenetic relationship within Rubus. The assembled 63,285 unique transcripts included 1,389 high-confidence lncRNA transcripts expressed in salmonberry leaves, 218 of which are conserved across Rubus. Phylogenetic analysis indicates that salmonberry is closely related to Rubus arcticus. In addition, we detected a novel species of virus associated with salmonberry. These findings provide foundational genomic resources for R. spectabilis and offer new insights into its evolutionary relationships and endogenous viral integrations.

plant biology↗

Mechanically-induced Septin Networks Protect Nuclear Integrity

The cytoskeleton is a key mediator of mechanical interactions in cells, but specific contributions of septins remains unclear. Septins preferentially localize with a subset of actin stress fibers positioned under the nucleus, where they are situated between the membrane and stress fibers. Removing the nucleus from the cell results in the loss of these subnuclear septin-decorated stress fibers. Surprisingly, however, their formation can be rescued using a large glass bead in place of the nucleus. Similarly, applying a compressive force to the cell via confinement, whether externally or through internally generated actomyosin forces, results in increased septin accumulation in regions where the nucleus engages the cell cortex. Finally, loss of septin filaments via knockdown of SEPT7 increases the likelihood of nuclear membrane rupture during confinement. Together these data suggest that septins act as a dynamic mechanosensitive protective mechanism to buffer mechanical forces on the nucleus.

cell biology↗

Local RhoA activation induces septin recruitment

The regulation of the actin cytoskeleton is key for controlling cell shape and structure. While the Rho GTPase RhoA is well known to regulate the actomyosin cytoskeleton, its function in controlling the septin cytoskeleton remains unclear. As RhoA interactions can vary in both time and space, they can be challenging to discern from traditional bulk biochemical assays. Here we use multiple optogenetic tools to spatially and temporally increase myosin localization, stimulate contractile force, and activate RhoA, to investigate how RhoA and its downstream effector myosin impact the septin cytoskeleton. We find that neither local accumulation of myosin nor increased activity of myosin is sufficient to alter septin architecture. Local activation of RhoA, however, results in a local increase in septin accumulation. Importantly, this septin increase is independent of the scaffolding protein anillin, which can directly bind both septin and RhoA. Together these data expand the potential role of septins in mediating RhoA signaling by stimulating the remodeling of the septin cytoskeleton.

cell biology↗

LIM Domain Proteins link molecular and global tension by recognizing strained actin in adhesions

Mechanotransduction is fundamental to cell signaling and depends on force-sensitive adhesion proteins. How these proteins differentiate and integrate their responses to tension remains an open question. We show mechanosensitive LIM domain proteins like zyxin detect global adhesion tension by recognizing strained actin within these structures. In sharp contrast, vinculin localization and intramolecular tension remain unchanged, despite vinculins well-documented role in mechanotransduction. This reveals a stark disconnect between molecular tension and global tension in adhesions. We further show tension-dependent localization is specific to LIM domain proteins that recognize strained actin and extends to LIM proteins at cell-cell junctions, suggesting a common mechanotransduction mechanism. Finally, we show zyxins tension-dependent adhesion localization stabilizes actin and recruits VASP to promote stress fiber polymerization, identical to its role in stress fiber repair. Our findings reveal a fundamental role for LIM domain protein force-sensing in adhesions and highlight the non-linear connection between molecular and global tension.

cell biology↗

Signal sequences target enzymes and structural proteins to bacterial microcompartments and are critical for microcompartment formation

Spatial organization of pathway enzymes has emerged as a promising tool to address several challenges in metabolic engineering, such as flux imbalances and off-target product formation. Bacterial microcompartments (MCPs) are a spatial organization strategy used natively by many bacteria to encapsulate metabolic pathways that produce toxic, volatile intermediates. Several recent studies have focused on engineering MCPs to encapsulate heterologous pathways of interest, but how this engineering affects MCP assembly and function is poorly understood. In this study, we investigated the role of signal sequences, short domains that target proteins to the MCP core, in the assembly of 1,2-propanediol utilization (Pdu) MCPs. We characterized two novel Pdu signal sequences on the structural proteins PduM and PduB, which constitutes the first report of metabolosome signal sequences on structural proteins rather than enzymes. We then explored the role of enzymatic and structural Pdu signal sequences on MCP assembly by deleting their encoding sequences from the genome alone and in combination. Deleting enzymatic signal sequences decreased MCP formation, but this defect could be recovered in some cases by overexpressing genes encoding the knocked-out signal sequence fused to a heterologous protein. By contrast, deleting structural signal sequences caused similar defects to knocking out the genes encoding the full length PduM and PduB proteins. Our results contribute to a growing understanding of how MCPs form and function in bacteria and provide strategies to mitigate assembly disruption when encapsulating heterologous pathways in MCPs.

synthetic biology↗