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Lauterbach, M. A.

Publications and source records attributed to Lauterbach, M. A..

4 recordsLinked to original sources

The mechanism how Pretubulysin-induced microtubule disassembly improves T cell search efficiency

To clean tissue from tumorigenic and infected cells, cytotoxic T lymphocytes (CTLs) must navigate confined environments in vivo, locate the infected cells and eliminate them. Impaired CTL migration towards the tumor can limit the efficacy of immunotherapy. Microtubules (MTs) have emerged as promising targets, because destabilizing MTs enhances T-cell migration and subsequent killing, yet the underlying mechanisms are poorly understood. Here, we use pretubulysin, a potent MT depolymerizer, to uncover how MT dynamics regulate CTL motility. Complete MT disassembly markedly increased CTL infiltration and migration in 3D matrices. To investigate how altered migration affects target elimination, we employed a persistent random-walk model parameterized solely with experimental motility data. The model shows that the increase in speed and persistence induced by pretubulysin explains enhanced search efficiency increasing the encounter rate of CTLs with target cells. The simulations also predict how these gains in search efficiency scale with tissue thickness and CTL density. Mechanistically, MT depolymerization in activated CTLs triggers localized actomyosin accumulation at the uropod. This enhances rear contraction forces and promotes faster, more persistent migration and efficient search. Our findings clarify how MT dynamics influence CTL ability to eliminate targets in 3D environments and highlights the potential of MT-targeting agents such as pretubulysin to optimize T cell-based immunotherapies.

cell biology↗

Pancreatic islets undergo functional and morphological adaptation during development of Barth Syndrome

Barth syndrome is a multisystem genetic disorder caused by mutation in TAFAZZIN, a gene that encodes a phospholipid:lysophospholipid transacylase important for cardiolipin remodeling. Barth Syndrome patients suffer from a number of symptoms including early heart failure, fatigue, and systemic metabolic alterations, including hypoglycemia. The endocrine pancreas is central to glucose homeostasis, however, the impact of defective cardiolipin remodeling on pancreatic islet function and the consequences for systemic metabolism is unclear. Surprisingly, in a mouse model with global TAFAZZIN knockdown, we observed improved glucose tolerance compared to wildtype littermates. We show that pancreatic islet metabolism and secretory function are robustly maintained through various compensatory mechanisms including increased glucose uptake and increased mitochondrial volume. Transcriptomics analyses revealed increased expression of genes encoding proteins involved in N-acetylglucosamine synthesis and protein O-linked N-acetylglucosaminylation. These pathways might provide a molecular mechanism for coupling metabolic changes to mitochondrial volume regulation.

physiology↗

Multicore-fiber microendoscopy for functional cellular in-organ imaging

Microendoscopy enables minimally invasive investigations of organs even within small cavities. Conventional microendoscopy is limited by probe size and often restricted to a single excitation wavelength. We developed and characterized a multichannel microendoscope as thin as 360 {micro}m and recorded functional cellular signals in-situ using custom written software for image processing. The endoscope had an effective resolution of 4.64 {micro}m and resolved subcellular structures of neurons. The system enabled analysis of in-situ calcium responses in murine tracheal brush cells and kidney podocytes. Additionally, ratiometric redox responses were recorded in whole, explanted organs and pancreatic islet culture. The flexibility and simplicity of our approach for imaging a variety of tissues and organs paves the way for in-vivo, longitudinal studies with cellular resolution.

bioengineering↗

Neuronal lysosome transfer to oligodendrocyte precursor cells: a novel mechanism of neuron-glia communication and its role in neurodegenerative disease

Oligodendrocyte precursor cells (OPCs) shape brain function through intricate regulatory mechanisms. Here, we observed that OPC processes establish connections with neuronal somata, with smaller lysosomes positioned near these contact sites. Tracking lysosomes demonstrated neuronal lysosomes were attracted to and released at these contact points, eventually becoming incorporated into OPC processes, suggesting a selective, OPC-evoked release of lysosomes from neuronal soma and their ingestion by OPCs, highlighting a unique lysosome-mediated communication between neurons and OPCs. Diminished branching of OPC processes resulted in fewer neuron-OPC contacts, fostering larger lysosome accumulation in neurons, altered neuronal activity and escalated prevalence of senescent neurons during aging. A similar reduction in OPC branching and neuronal lysosome accumulation was evident in an early-stage Alzheimers disease mouse model. Together, these findings underscore the pivotal role of OPC processes in modulating neuronal activity through direct somatic contact and lysosome ingestion, presenting a prospective therapeutic avenue for addressing neurodegenerative diseases.

neuroscience↗