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44


Profiling antigen-binding affinity of B cell repertoires in tumors by deep learning predicts immune-checkpoint inhibitor treatment outcomes

Song, Bing; Wang, Kaiwen; Na, Saiyang; Yao, Jia; Fattah, Farjana J; Martin, Alexandra L; von Itzstein, Mitchell S; Yang, Donghan M; Liu, Jialiang; Xue, Yaming; Liang, Chaoying; Guo, Yuzhi; Raman, Indu; Zhu, Chengsong; Dowell, Jonathan E; Homsi, Jade; Rashdan, Sawsan; Yang, Shengjie; Gwin, Mary E; Wu, Tuoqi; Hsiehchen, David; Gloria-McCutchen, Yvonne; Lu, Catherine Pei-Ju; Raj, Prithvi; Bai, Xiao-Chen; Wang, Jun; Conejo-Garcia, Jose; Xie, Yang; Huang, Junzhou; Gerber, David E; Wang, Tao
The capability to profile the landscape of antigen-binding affinities of a vast number of antibodies (B cell receptors, BCRs) will provide a powerful tool to reveal biological insights. However, experimental approaches for detecting antibody-antigen interactions are costly and time-consuming and can only achieve low-to-mid throughput. In this work, we developed Cmai (contrastive modeling for antigen-antibody interactions) to address the prediction of binding between antibodies and antigens that can be scaled to high-throughput sequencing data. We devised a biomarker based on the output from Cmai to map the antigen-binding affinities of BCR repertoires. We found that the abundance of tumor antigen-targeting antibodies is predictive of immune-checkpoint inhibitor (ICI) treatment response. We also found that, during immune-related adverse events (irAEs) caused by ICI, humoral immunity is preferentially responsive to intracellular antigens from the organs affected by the irAEs. We used Cmai to construct a BCR-based irAE risk score, which predicted the timing of the occurrence of irAEs.
PMID: 40579590
ISSN: 2662-1347
CID: 5937532

Proximity between LAG-3 and the T cell receptor guides suppression of T cell activation and autoimmunity

Du, Jasper; Chen, Hui; You, Jia; Hu, Wei; Liu, Jia; Lu, Qiao; Zhang, Yong; Gao, Jie; Lin, Meng-Ju; Foster, Connor James Ryan; Rao, Eric; Cammer, Michael; Yin, Weiwei; Koide, Shohei; Lu, Catherine Pei-Ju; Chen, Wei; Lou, Jizhong; Wang, Jun
Therapeutically targeting pathogenic T cells in autoimmune diseases has been challenging. Although LAG-3, an inhibitory checkpoint receptor specifically expressed on activated T cells, is known to bind to major histocompatibility complex class II (MHC class II), we demonstrate that MHC class II interaction alone is insufficient for optimal LAG-3 function. Instead, LAG-3's spatial proximity to T cell receptor (TCR) but not CD4 co-receptor, facilitated by cognate peptide-MHC class II, is crucial in mediating CD4+ T cell suppression. Mechanistically, LAG-3 forms condensate with TCR signaling component CD3ε through its intracellular FSAL motif, disrupting CD3ε/lymphocyte-specific protein kinase (Lck) association. To exploit LAG-3's proximity to TCR and maximize LAG-3-dependent T cell suppression, we develop an Fc-attenuated LAG-3/TCR inhibitory bispecific antibody to bypass the requirement of cognate peptide-MHC class II. This approach allows for potent suppression of both CD4+ and CD8+ T cells and effectively alleviates autoimmune symptoms in mouse models. Our findings reveal an intricate and conditional checkpoint modulatory mechanism and highlight targeting of LAG-3/TCR cis-proximity for T cell-driven autoimmune diseases lacking effective and well-tolerated immunotherapies.
PMID: 40592325
ISSN: 1097-4172
CID: 5887772

Response to Andersen et al.'s "A genome-wide association meta-analysis links hidradenitis suppurativa to common and rare sequence variants causing disruption of the Notch and Wnt/β-catenin signaling pathways." [Letter]

Perez, Olivia D; Lin, Meng-Ju; Pomeranz, Miriam K; Chiu, Ernest S; Lu, Catherine P; Petukhova, Lynn
PMID: 40334920
ISSN: 1097-6787
CID: 5839282

Expression of glandular genes in the tunnel epithelium of Hidradenitis Suppurativa

Lin, Meng-Ju; Marohn, Meaghan; Chiu, Ernest S; Lu, Catherine Pei-Ju
PMID: 40158768
ISSN: 1523-1747
CID: 5818582

Decoding Tertiary Lymphoid Structures in Hidradenitis Suppurativa: New Mechanistic Insights

Yu, Wei-Wen; Tong, Jie; Lu, Catherine P
PMID: 40152835
ISSN: 1523-1747
CID: 5817512

Oxytocin induces embryonic diapause

Minder, Jessica L; Winokur, Sarah B; Stephens, Janaye; Tong, Jie; Cassel, Naomi L; Schuster, Luisa; Issa, Habon A; Cammer, Michael; Khatri, Latika; Moisan, Gaia; Alvarado-Torres, Maria; Aristizábal, Orlando; Wadghiri, Youssef Z; Kim, Sang Yong; Valtcheva, Silvana; Lu, Catherine Pei-Ju; Chao, Moses V; Froemke, Robert C
Embryonic development in many species, including case reports in humans, can be temporarily halted before implantation during a process called diapause. Facultative diapause occurs under conditions of maternal metabolic stress such as nursing. While molecular mechanisms of diapause have been studied, a natural inducing factor has yet to be identified. Here, we show that oxytocin induces embryonic diapause in mice. We show that gestational delays were triggered during nursing or optogenetic stimulation of oxytocin neurons simulating nursing patterns. Mouse blastocysts express oxytocin receptors, and oxytocin induced delayed implantation-like dispersion in cultured embryos. Last, oxytocin receptor-knockout embryos transferred into wild-type surrogates had low survival rates during diapause. Our results indicate that oxytocin coordinates timing of embryonic development with uterine progression through pregnancy, providing an evolutionarily conserved mechanism for ensuring successful reproduction.
PMCID:11881891
PMID: 40043121
ISSN: 2375-2548
CID: 5809752

Skin keratinocyte-derived SIRT1 and BDNF modulate mechanical allodynia in mouse models of diabetic neuropathy

O'Brien, Jennifer; Niehaus, Peter; Chang, Koping; Remark, Juliana; Barrett, Joy; Dasgupta, Abhishikta; Adenegan, Morayo; Salimian, Mohammad; Kevas, Yanni; Chandrasekaran, Krish; Kristian, Tibor; Chellappan, Rajeshwari; Rubin, Samuel; Kiemen, Ashley; Lu, Catherine Pei-Ju; Russell, James W; Ho, Cheng-Ying
Diabetic neuropathy is a debilitating disorder characterized by spontaneous and mechanical pain. The role of skin mechanoreceptors in the development of mechanical pain (allodynia) is unclear. We discovered that mice with diabetic neuropathy had decreased sirtuin 1 (SIRT1) deacetylase activity in foot skin, leading to reduced expression of brain-derived neurotrophic factor (BDNF) and subsequent loss of innervation in Meissner corpuscles, a mechanoreceptor expressing the BDNF receptor TrkB. When SIRT1 was depleted from skin, the mechanical allodynia worsened in diabetic neuropathy mice, likely due to retrograde degeneration of the Meissner-corpuscle innervating Aβ axons and aberrant formation of Meissner corpuscles which may have increased the mechanosensitivity. The same phenomenon was also noted in skin BDNF knockout mice. Furthermore, overexpression of SIRT1 in skin induced Meissner corpuscle reinnervation and regeneration, resulting in significant improvement of diabetic mechanical allodynia. Overall, the findings suggested that skin-derived SIRT1 and BDNF function in the same pathway in skin sensory apparatus regeneration and highlighted the potential of developing topical SIRT1-activating compounds as a novel treatment for diabetic mechanical allodynia.
PMID: 36747753
ISSN: 2692-8205
CID: 6072067

Molecular Signature Associated With Acute Rejection in Vascularized Composite Allotransplantation

Cassidy, Michael F; Doudican, Nicole A; Frazzette, Nicholas; Rabbani, Piul S; Carucci, John A; Gelb, Bruce E; Rodriguez, Eduardo D; Lu, Catherine P; Ceradini, Daniel J
BACKGROUND/UNASSIGNED:A deeper understanding of acute rejection in vascularized composite allotransplantation is paramount for expanding its utility and longevity. There remains a need to develop more precise and accurate tools for diagnosis and prognosis of these allografts, as well as alternatives to traditional immunosuppressive regimens. METHODS/UNASSIGNED:Twenty-seven skin biopsies collected from 3 vascularized composite allotransplantation recipients, consisting of face and hand transplants, were evaluated by histology, immunohistochemistry staining, and gene expression profiling. RESULTS/UNASSIGNED:significantly predicted inflammation specific to vascularized composite allografts that required therapeutic intervention. CONCLUSIONS/UNASSIGNED:The mechanism of vascularized composite allograft-specific inflammation and rejection appears to be conserved across different patients and skin on different anatomical sites. A concise gene signature can be utilized to ascertain graft status along with a continuous scale, providing valuable diagnostic and prognostic information to supplement current gold standards of graft evaluation.
PMCID:11415116
PMID: 39310283
ISSN: 2373-8731
CID: 5802822

Skin immune-mesenchymal interplay within tertiarylymphoid structures promotes autoimmunepathogenesis in hidradenitis suppurativa

Yu, Wei-Wen; Barrett, Joy N P; Tong, Jie; Lin, Meng-Ju; Marohn, Meaghan; Devlin, Joseph C; Herrera, Alberto; Remark, Juliana; Levine, Jamie; Liu, Pei-Kang; Fang, Victoria; Zellmer, Abigail M; Oldridge, Derek A; Wherry, E John; Lin, Jia-Ren; Chen, Jia-Yun; Sorger, Peter; Santagata, Sandro; Krueger, James G; Ruggles, Kelly V; Wang, Fei; Su, Chang; Koralov, Sergei B; Wang, Jun; Chiu, Ernest S; Lu, Catherine P
Hidradenitis suppurativa (HS) is a chronic, debilitating inflammatory skin disease characterized by keratinized epithelial tunnels that grow deeply into the dermis. Here, we examined the immune microenvironment within human HS lesions. Multi-omics profiling and multiplexed imaging identified tertiary lymphoid structures (TLSs) near HS tunnels. These TLSs were enriched with proliferative T cells, including follicular helper (Tfh), regulatory (Treg), and pathogenic T cells (IL17A+ and IFNG+), alongside extensive clonal expansion of plasma cells producing antibodies reactive to keratinocytes. HS fibroblasts express CXCL13 or CCL19 in response to immune cytokines. Using a microfluidic system to mimic TLS on a chip, we found that HS fibroblasts critically orchestrated lymphocyte aggregation via tumor necrosis factor alpha (TNF-α)-CXCL13 and TNF-α-CCL19 feedback loops with B and T cells, respectively; early TNF-α blockade suppressed aggregate initiation. Our findings provide insights into TLS formation in the skin, suggest therapeutic avenues for HS, and reveal mechanisms that may apply to other autoimmune settings, including Crohn's disease.
PMID: 39662091
ISSN: 1097-4180
CID: 5762712

Metabolic coordination between skin epithelium and type 17 immunity sustains chronic skin inflammation

Subudhi, Ipsita; Konieczny, Piotr; Prystupa, Aleksandr; Castillo, Rochelle L; Sze-Tu, Erica; Xing, Yue; Rosenblum, Daniel; Reznikov, Ilana; Sidhu, Ikjot; Loomis, Cynthia; Lu, Catherine P; Anandasabapathy, Niroshana; Suárez-Fariñas, Mayte; Gudjonsson, Johann E; Tsirigos, Aristotelis; Scher, Jose U; Naik, Shruti
Inflammatory epithelial diseases are spurred by the concomitant dysregulation of immune and epithelial cells. How these two dysregulated cellular compartments simultaneously sustain their heightened metabolic demands is unclear. Single-cell and spatial transcriptomics (ST), along with immunofluorescence, revealed that hypoxia-inducible factor 1α (HIF1α), downstream of IL-17 signaling, drove psoriatic epithelial remodeling. Blocking HIF1α in human psoriatic lesions ex vivo impaired glycolysis and phenocopied anti-IL-17 therapy. In a murine model of skin inflammation, epidermal-specific loss of HIF1α or its target gene, glucose transporter 1, ameliorated epidermal, immune, vascular, and neuronal pathology. Mechanistically, glycolysis autonomously fueled epithelial pathology and enhanced lactate production, which augmented the γδ T17 cell response. RORγt-driven genetic deletion or pharmacological inhibition of either lactate-producing enzymes or lactate transporters attenuated epithelial pathology and IL-17A expression in vivo. Our findings identify a metabolic hierarchy between epithelial and immune compartments and the consequent coordination of metabolic processes that sustain inflammatory disease.
PMID: 38772365
ISSN: 1097-4180
CID: 5654422