Search bioRxiv⌕ Search

Biology subjects

Yuan, O.

Publications and source records attributed to Yuan, O..

3 recordsLinked to original sources

LIMD1 Loss as an Early Driver of PD-L1 Upregulation and Immune Evasion in Lung Cancer

LIMD1 is a tumour suppressor gene frequently lost in non-small cell lung cancer (NSCLC), but its role in cancer-immune cell interactions remains unexplored. Here, we demonstrate that LIMD1 loss results in upregulation of the key immune checkpoint protein PD-L1. Using multi-region sequencing from the TRACERx dataset, we identify that LIMD1 loss is clonal in over 80% of squamous cell carcinoma (LUSC) and 40% of lung adenocarcinoma (LUAD) cases, correlating with increased PD-L1 expression. LIMD1 deficiency results in upregulation of basal and IFN{gamma}-induced PD-L1 expression in NSCLC cells and, consistent with its early loss during oncogenesis, in primary human small airway epithelial cells. Mechanistically, we demonstrate that LIMD1 interacts with the E3 ubiquitin ligase ARIH1 to mediate efficient PD-L1 ubiquitination and degradation, a process that is significantly impaired in LIMD1-deficient cells, resulting in increased PD-L1 stability. As a consequence, LIMD1-deficient tumour cells suppressed CD8+ T cell activation in vitro, and blockade of PD-L1 reversed this suppression. Clinically, we show that LIMD1 loss is associated with enhanced response to immune checkpoint inhibitors (ICIs) in NSCLC patient cohorts, revealing a novel cancer cell-intrinsic correlation of ICI efficacy. Our results uncover a tumour suppressor-mediated mechanism of PD-L1 expression and pave the way for stratified immunotherapy approaches in LIMD1-/- NSCLC.

cancer biology↗

NK cells control the progression of myelodysplastic syndrome but become initial disease target in NUP98-HOXD13 mouse model

Studies in NUP98/HOXD13 mouse model (NHD13tg), progressing from myelodysplastic syndrome (MDS) to different forms of leukemia, demonstrated that T cells had a limited anti-leukemia effect, suggesting the involvement of other immune cells. Natural killer (NK) cells control viral infection and cancer. In MDS and acute myeloid leukemia (AML), patients often acquire disease-induced NK cell dysfunctions. Here, we report that NK cells from NHD13tg mice were reduced before the MDS-onset and specific NK cell depletion accelerated the disease progression and severity. NK cells from NHD13tg mice showed perturbed differentiation and impaired IL-15/IL-2 responses. These defects were cell-intrinsic and mainly affected the KLRG1+ mature NK cells. The expression of Nfil3, Klf2 and Id2 genes, crucial for NK cell development, homeostasis and IL-15 responsiveness, was altered in immature NK cells from NHD13tg mice. Interestingly, these genes were changed in MDS and AML bone marrow patient-samples compared to healthy donors. Our findings highlight a critical role for NK cells in controlling MDS progression and identify new genetic markers for MDS and AML.

immunology↗

Ex Vivo Expansion Potential of Hematopoietic Stem Cells: A Rare Property Only Partially Predicted by Phenotype

The scarcity of hematopoietic stem cells (HSCs) restricts their use in both clinical settings and experimental research. Here, we examined a recently developed method for expanding rigorously purified murine HSCs ex vivo. After three weeks of culture, only 0.1% of cells exhibited the input HSC phenotype, but these accounted for almost all functional long-term HSC activity. Input HSCs displayed varying potential for ex vivo self-renewal, with alternative outcomes revealed by single cell multimodal RNA- and ATAC-seq profiling. While most HSC progeny offered only transient in vivo reconstitution, these cells efficiently rescued mice from lethal myeloablation. The amplification of functional HSC activity allowed for long-term multilineage engraftment in unconditioned hosts that associated with a return of HSCs to quiescence. Thereby, our findings identify several key considerations for ex vivo HSC expansion, with major implications also for assessment of normal HSC activity. Key point: Ex vivo self-renewal is an intrinsic property of rare candidate HSCs, with implications for assessments of HSC activity by transplantation.

cell biology↗