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Rheinberger, M.

Publications and source records attributed to Rheinberger, M..

2 recordsLinked to original sources

Nanoscale imaging of native symbiotic animal tissue using amultimodal large volume imaging pipeline for cryo-electrontomography

The field of cryo-EM offers the possibility to gain high-resolution structural information of biomolecules in their native state. Advances in sample thinning of cryo-EM samples allows the study of proteins inside intact cells using tomography, opening the door for visual proteomics. However, thicker samples such as tissues or entire organisms are still largely unsuitable for cryo-electron tomography (cryo-ET). Therefore, significant efforts are directed toward developing and improving preparation methods to enable cryo-ET of such complex samples. We focused on the binary association between the Hawaiian bobtail squid Euprymna scolopes and the luminous bacteria Vibrio fischeri. The Squid-Vibrio system has long been studied to understand host-symbiont interactions. Our goal is to study the bacterial-host interface using cryo-ET, at a resolution previously unattainable by conventional EM methods. Here, we present a multi-modal preparation and correlative imaging workflow--including cryo- fluorescence microscopy, microCT, freeze-substitution electron tomography (FS-ET), and serial blockface SEM--to localize and prepare specific regions of the dissected symbiotic light organs for cryo-ET. This approach enabled us to directly visualize symbiotic V. fischeri within the internal host crypts at macromolecular resolution, revealing spatial organization, physical contact, and putative exchange interfaces between host and microbe. Our findings provide structural insights into a foundational model of host-microbe symbiosis and demonstrate the feasibility of cryo-ET for investigating intact tissues at the nanoscale.

microbiology↗

Genomic profiling of HIV-1 integration in microglia links viral insertions to TAD organization

HIV-1 persists in anatomically distinct cellular and tissue reservoirs as a stably integrated provirus that is a major barrier to HIV-1 cure. Proviral insertions are largely characterized in blood cells, while HIV-1 integration patterns remain unexplored in microglia, the major brain reservoir. Here, we employ genomics approaches to obtain the first HIV-1 integration site (IS) profiling in microglia and perform in-depth analysis of transcriptome, specific histone signatures and chromatin accessibility on different genomic scales. We show that HIV-1 follows genic insertion patterns into introns of actively transcribed genes, characteristic of blood reservoirs. HIV-1 insertional hotspot analysis by non-negative matrix factorization (NMF)-based approach clusters IS signatures with genic- and super-enhancers. Chromatin accessibility transcription factor (TF) footprints reveal that increased CTCF binding marks latently infected microglia compared to productively infected one. We identify CTCF-enriched topologically associated domain (TAD) borders with signatures of active chromatin as a neighborhood for HIV-1 integration in microglia and CD4+ T cells. Our findings further strengthen the notion that HIV-1 follows the patterns of host cell genome organization to integrate and to establish the silent proviral state and reveal that these principles are largely conserved in different anatomical latent reservoirs.

genomics↗