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Biology subjects

Wilhelm, L.

Publications and source records attributed to Wilhelm, L..

5 recordsLinked to original sources

A human induced pluripotent stem (hiPS) cell model for the holistic study of epithelial to mesenchymal transitions (EMTs)

The epithelial to mesenchymal transition (EMT) is a widely studied but poorly defined state change due to the variety of ways in which it has been characterized in cells. There is a need for reproducible cell model systems that enable the integration and comparison of different types of measured observations of cells across many distinct cellular contexts. We present human induced pluripotent stem (hiPS) cells as such a model system by demonstrating its utility through a comparative analysis of hiPS cell-EMT in 2D and 3D cell culture geometries. We developed live-imaging-based assays to directly compare examples of changes in cell function (via migration timing), molecular components (via expression of marker proteins), organization (via reorganization of cell junctions), and environment (via dynamics of basement membrane) in the same experimental system. The EMT-related changes we measured occurred earlier in 2D colonies than in 3D lumenoids, likely due to differences in the basement membrane environments associated with 2D vs. 3D initial hiPS cell culture geometries. We have made the 449 60-hour-long 3D time-lapse movies and the associated tools used for analysis and visualization open-source and easily accessible as a resource for future work in this field.

cell biology↗

Colony context and size-dependent compensation mechanisms give rise to variations in nuclear growth trajectories

To investigate the fundamental question of how cellular variations arise across spatiotemporal scales in a population of identical healthy cells, we focused on nuclear growth in hiPS cell colonies as a model system. We generated a 3D timelapse dataset of thousands of nuclei over multiple days, and developed open-source tools for image and data analysis and an interactive timelapse viewer for exploring quantitative features of nuclear size and shape. We performed a data-driven analysis of nuclear growth variations across timescales. We found that individual nuclear volume growth trajectories arise from short timescale variations attributable to their spatiotemporal context within the colony. We identified a strikingly time-invariant volume compensation relationship between nuclear growth duration and starting volume across the population. Notably, we discovered that inheritance plays a crucial role in determining these two key nuclear growth features while other growth features are determined by their spatiotemporal context and are not inherited.

cell biology↗

The Colorado potato beetle gene expression atlas

The Colorado potato beetle (CPB) is a major pest of potato crops that has evolved resistance to more than 50 pesticides. For decades, CPB has been a model species for research on insecticide resistance, insect physiology, diapause, reproduction and evolution. Yet, the research progress in CPB is constrained by the lack of comprehensive genomic and transcriptomic information. Here, building on the recently established chromosome-level genome assembly, we built a gene expression atlas of the CPB using the transcriptomes of 61 samples representing major organs and developmental stages. By using both short and long reads, we improved the genome annotation and identified 6,658 more genes that were missed in previous annotations. We then established a web portal allowing the search and visualization of the gene expression for the research community. The CPB atlas provides useful tools and comprehensive gene expression data, which will accelerate future research in both pest control and insect biology fields.

genomics↗

Modulation of neural gene networks by estradiol in old rhesus macaque females.

The postmenopausal decrease in circulating estradiol (E2) levels has been shown to contribute to several adverse physiological and psychiatric effects. To elucidate the molecular effects of E2 on the brain, we examined differential gene expression and DNA methylation (DNAm) patterns in the nonhuman primate brain following ovariectomy (Ov) and subsequent E2 treatment. We identified several dysregulated molecular networks, including MAPK signaling and dopaminergic synapse response, that are associated with ovariectomy and shared across two different brain areas, the occipital cortex (OC) and prefrontal cortex (PFC). The finding that hypomethylation (p=1.6x10-51) and upregulation (p=3.8x10-3) of UBE2M across both brain regions, provide strong evidence for molecular differences in the brain induced by E2 depletion. Additionally, differential expression (p=1.9x10-4; interaction p=3.5x10-2) of LTBR in the PFC, provides further support for the role E2 plays in the brain, by demonstrating that the regulation of some genes that are altered by ovariectomy may also be modulated by Ov followed by hormone replacement therapy (HRT). These results present real opportunities to understand the specific biological mechanisms that are altered with depleted E2. Given E2s potential role in cognitive decline and neuroinflammation, our findings could lead to the discovery of novel therapeutics to slow cognitive decline. Together, this work represents a major step towards understanding molecular changes in the brain that are caused by ovariectomy and how E2 treatment may revert or protect against the negative neuro-related consequences caused by a depletion in estrogen as women approach menopause.

genetics↗

The function of CozE proteins is linked to lipoteichoic acid biosynthesis in Staphylococcus aureus

To maintain cell integrity and facilitate cell division in Staphylococcus aureus, a well-coordinated interplay between membrane biogenesis, peptidoglycan formation, and teichoic acid synthesis is crucial. However, the molecular mechanisms and regulatory pathways that underpin their coordination are still poorly understood. CozE constitute a conserved family of membrane proteins implicated in cell division via regulation of penicillin binding proteins. It has been shown that the two staphylococcal cozE genes (cozEa and cozEb) constitute a synthetic lethal gene pair. Depletion of CozEa and CozEb simultaneously in S. aureus resulted in severely defective cell division phenotypes, reminiscent of cell lacking lipoteichoic acid (LTA). Indeed, we demonstrate that there is an intricate interplay between CozE, biosynthesis of LTA, and membrane homeostasis in S. aureus. By screening for potential genetic links, we establish that there is synthetic lethal relationship between CozE and UgtP, the enzyme synthesizing the LTA glycolipid anchor Glc2DAG. On the contrary, in cells lacking LtaA, the flippase of Glc2DAG, the essentiality of CozEa and CozEb was alleviated. Furthermore, by immunoblotting, we found that CozEb plays a unique role in controlling LTA polymer length and stability. Using reconstituted proteoliposomes, we also demonstrated that CozE proteins modulate the glycolipid flipping activity of LtaA in vitro. Together, the results demonstrate a new function of CozE proteins, facilitating proper membrane homeostasis and LTA biosynthesis in S. aureus.

microbiology↗