bioRxiv Science⌕ Search

Biology subjects

Ruhland, S.

Publications and source records attributed to Ruhland, S..

4 recordsLinked to original sources

Sex-Dimorphic Neural Memory Shapes Pancreatic Tissue Resilience

Epithelial cells can encode prior damage into lasting epigenetic and functional states, enabling a primed response to future insults. In the pancreas, acute injury induces reversible acinar cell reprogramming toward a progenitor-like identity that persists beyond repair, supporting resilience to recurrent injury but creating a permissive state for malignant transformation. Given the central role of the tissue niche in stem cell regulation, we investigated microenvironmental adaptations that sustain this primed epithelial state. Using genetic mouse models and ex vivo organoid co-cultures, we identify a sex-specific sensory neural memory after pancreatitis that sustains long-term epithelial plasticity through a CGRP-dependent neuron-epithelial axis. We show that sex differences in acute inflammation drive neutrophil-dependent suppression of neural activation in females, decoupling neural memory from epithelial plasticity after repair. In males, neural memory promotes post-injury plasticity, revealing tissue memory as coordinated adaptation between epithelial progenitors and their niche.

cancer biology↗

CRISPR screens establish regulatory maps of immunosuppressive surface molecules in cancer

Cancer cells can evade immune surveillance by triggering inhibitory checkpoint responses in tumor-associated T cells through the expression of immunosuppressive surface molecules. While therapeutic blockade of such receptors has emerged as a pillar of cancer therapy, tumor cell-intrinsic mechanisms controlling their expression remain incompletely understood. Fluorescence-activated cell sorting (FACS)-based genetic screens can be used to decipher regulatory pathways, but conventional screening approaches are biased towards regulators that are dispensable for cancer cell proliferation and survival. Here, we used a tetracycline-inducible Cas9 system enabling fully time-controllable CRISPR-based mutagenesis to gain a more comprehensive and comparative survey of regulators controlling the expression of four major immunosuppressive surface molecules, PD-L1 (CD274), CD47, CD276 and HLA-E, as well as CD151, a candidate surface target associated with tumor growth and invasion. As a prominent hit, our screens identify the membrane-trafficking factor DNAJC13 as a regulator of PD-L1 and CD276. Among DNAJC13-controlled surface proteins, we identify other known and proposed immune-checkpoint molecules. Based on this function, suppression of DNAJC13 strongly increases the sensitivity of human cancer cells to T-cell attack in vitro and prolongs survival of mice bearing pancreatic tumors. Together, our study establishes regulatory maps of major immune-modulatory surface molecules and identifies DNAJC13 as a potential target for the coordinated inhibition of multiple immunosuppressive signals.

molecular biology↗

Inhibition of neutrophil degranulation by Nexinhib20 delays the development of radiation-induced pulmonary fibrosis

Despite advances in radiation delivery techniques that enhance tumour targeting and minimise collateral exposure, healthy tissues remain susceptible to radiation-induced fibrosis, a chronic and progressive condition that can severely compromise patient quality of life. Therapeutic options to prevent or treat radiation-induced fibrosis remain limited. Recent work has shown that neutrophils infiltrating healthy lung tissue after irradiation adopt an activated phenotype capable of perturbing cellular responses of both epithelial and mesenchymal cells. However, the contribution of these radiation-educated neutrophils to the development of radiation-induced fibrosis remains unclear. Using targeted, image-guided lung irradiation to deliver a dose sufficient to induce fibrosis within four months, we demonstrate that neutrophils are essential for the efficient development of clinically evident fibrosis. Lung irradiation educates neutrophils, enabling them to promote early alterations in the extracellular matrix shortly after radiation exposure. We further show that this "educated" phenotype depends on neutrophil degranulation activity. Pharmacological inhibition of degranulation with Nexinhib20 redirected these cells toward a pro-angiogenic and anti-fibrotic phenotype. Importantly, this treatment was also associated with a transcriptional shift in mesenchymal cells away from a pro-fibrotic program, resulting in a marked delay in the onset of radiation-induced fibrosis. Importantly, Nexinhib20 did not impair the efficacy of cancer radiotherapy, underscoring its potential as a therapeutic strategy to prevent fibrotic complications without diminishing anti-tumour effectiveness.

cancer biology↗

Type I interferons induced upon respiratory viral infection impair lung metastatic initiation

Invasive breast cancer accounts for 7% of all cancer-related deaths, with the lungs being a common site of metastases. At the same time, lower respiratory tract infections are a common cause of morbidity and mortality worldwide. Acute viral respiratory infections induce transitional changes in the lung; however, the impact of these changes on metastasis initiation and cancer progression remains unclear. Using primary murine MMTV-PyMT breast cancer cells in an experimental lung metastasis model, we show that changes induced by respiratory syncytial virus (RSV) infection impair tumor cell seeding and early establishment in the lung, resulting in lower number of metastatic nodules. Furthermore, we demonstrate that this reduction of metastases is due to alterations in the lung environment mediated by type I interferons (IFNs) that are produced in response to RSV infection. Consistent with that notion, intranasal administration of recombinant IFN- recapitulates the anti-tumor effect of RSV infection. Type I IFNs change the lung cellular composition and induce an Interferon Stimulated Gene (ISG) driven response, creating an alveolar environment that is less supportive of tumor cell growth. Indeed, epithelial cells from mice infected with RSV or intranasally exposed to IFN-, are less supportive of tumor cell growth ex vivo. Altogether, our results suggest that type I IFNs induced by infection with some respiratory viruses perturb the lungs and consequently interfere with the ability of tumor cells to successfully initiate metastatic colonization. SignificanceWomen diagnosed with metastatic breast cancer have a low survival rate. The lungs are a common metastatic site and are constantly exposed to viral pathogens, such as coronavirus, RSV and influenza virus. Thus, breast cancer and respiratory virus infection are likely to co-occur, but their interplay remains unclear. We show that type I interferons (IFNs), induced upon viral infection impair metastatic cancer cell seeding of mouse lungs. This is potentially via an effect of IFNs on lung epithelial cells, which become less supportive of early tumor cell proliferation. These findings indicate that viral infections and type I IFNs can alter the lung environment and impair implantation of metastatic cells, which could be explored to improve future cancer treatments.

immunology↗