Tan et al. report that lymphatic dysfunction and immune cell infiltration contribute to mitral valve disease in a mouse model of Marfan syndrome. The cover art is an illustration highlighting the decreased density of lymphatic vessels (green) within the myxomatous degenerated mitral valve leaflets of a Marfan syndrome mouse model. Image generated using ChatGPT and edited in Adobe Fresco. Image credit: Can Tan.
Yashika Parashar, Zsofia Sztupinszki, Aurel György Prósz, Xiaolu Wang, Pratyusha Bala, Shweta Kiran Cavale, Chinedu Ukaegbu, Sapna Syngal, Asaf Maoz, Leah H. Biller, Ramona Lim, Matthew B. Yurgelun, Zoltan Szallasi, Nilay S. Sethi
Dietary cholesterol and de novo cholesterol synthesis in the liver use reciprocal coordination to maintain cholesterol homeostasis. However, high level of dietary cholesterol still promotes excessive cholesterol accumulation in the liver, leading to metabolic dysfunction-associated steatohepatitis (MASH), yet the mechanisms remain poorly understood. Here we show that hepatic S100A11, a member of the S100 family of calcium-binding proteins, positively responds to the dietary cholesterol level and is involved in hepatic cholesterol metabolism. S100A11 localizes to the endoplasmic reticulum and can bind to cholesterol. In vivo and in vitro, hepatic overexpression of S100A11 led to SREBP2 activation to promote cholesterol synthesis, uptake, and accumulation, consequently exacerbating steatohepatitis. In contrast, inactivation of S100A11 had opposite effects and improved steatohepatitis. Mechanistically, S100A11 triggers the non-canonical entry of SREBP2 into the nucleus through a S100A11-ANXA1-KPNB axis, distinct from the well-known INSIG-SCAP pathway or Caspase2 pathways. Therefore, our work identifies S100A11 as a regulator of liver cholesterol metabolism, providing a promising target to treat MASH and hypercholesterolemia.
Mingfeng Zhan, Xiumei Xu, Huiyin Wu, Qijing Fan, Hongsheng Lu, Chengbin Li, Linqiang Zhang, Tingting Zhu, Yunqian Shen, Jing Liu, Yaomei He, Yingjie Wu, Jingjing Zhang, Xiaoju Zou, Bin Liang
The success of allogeneic hematopoietic cell transplantation (allo-HCT) is limited by acute graft-versus-host disease (aGVHD). We have previously reported that neutrophils can exacerbate tissue damage caused by conditioning regimens. Pegtarazimod is a synthetic peptide, derived from the capsid protein of human astrovirus serotype 1, that was shown to reduce neutrophil effector functions. Therefore, we evaluated the therapeutic activity of pegtarazimod against aGVHD. Pegtarazimod significantly reduced aGVHD-related mortality, histological aGVHD severity, and pro-inflammatory cytokines in multiple in vivo mouse models, while maintaining the anti-leukemia effect. Mechanistically, pegtarazimod reduced inflammation by decreasing ROS production as investigated using allo-HCT recipient mice with genetic inactivation of NADPH oxidase (NOX2) in the bone marrow. In addition to the anti-inflammatory effect, pegtarazimod protected intestinal organoids against TNF-induced toxicity and oxidative DNA damage. In the phase-2 clinical trial AURORA, pegtarazimod treatment was well-tolerated in patients with corticosteroid-refractory (SR) aGVHD (NCT06343792) with an overall response rate (ORR) of 4/7 patients at day 28. In summary, pegtarazimod reduced aGVHD in mice by suppressing pro inflammatory neutrophil effector functions and preserving enterocyte integrity. The clinical trial data support tolerability of pegtarazimod in aGVHD patients and further studies are needed to determine efficacy.
Verena Holzmüller, Jana Gawron, Ann-Cathrin Burk, Anna-Verena Stell, Anna-Sophia Baur, Alexander Zähringer, Viktor Fetsch, Annika Mäder, Alina Hartmann, Nana Talvard-Balland, Neel Krishna, Kenji Cunnion, Ulrich Thienel, Paolo Martini, Lindsey Glenn, James L.M. Ferrara, Monzr M. Al Malki, Hannah Choe, José Antonio Pérez-Simón, Annette Schmitt-Graeff, Joerg Buescher, Natalie Köhler, Zohreh Mansoori Moghadam, Philipp Henneke, Geoffroy Andrieux, Melanie Boerries, Robert Zeiser
Effective psychotherapeutic interventions for post-traumatic stress disorder (PTSD) rely on fear extinction to suppress maladaptive fear responses, yet their long-term efficacy is limited by high relapse rates. Notably, extinction involves not only fear inhibition but also affective engagement. However, whether and how internal affective components contribute to extinction retrieval and long-term persistence remain unclear. Here, we demonstrate that positive affective experiences arising during extinction govern the long-term persistence of extinction and resistance to spontaneous recovery. We identify a subpopulation of medial prefrontal cortex (mPFC) extinction neurons projecting to supramammillary nucleus glutamatergic (SuMGlu) neurons that encodes positive affective experience during extinction and selectively governs long-term extinction persistence. This ensemble is spatially, anatomically, and transcriptionally distinct from mPFC extinction neurons projecting to zona incerta somatostatin-expressing (ZISST) neurons, which primarily support extinction retrieval. Transcriptomic profiling reveals enrichment of sirtuin 1 (Sirt1) within SuM-projecting extinction ensembles, and bidirectional manipulation of SIRT1 alters extinction relapse vulnerability in a PTSD mouse model. These findings provide a cortical–hypothalamic framework incorporating molecular features that governs the long-term persistence of fear extinction and resistance to relapse through positive affective processes.
Ze-Jie Lin, Xin-Rong Wu, Ming-Yang Wei, Zheng-Kai Lao, Xiang Lan, Yan-Jiao Wu, Wei-Guang Li, Tian-Le Xu, Li-Na Huang, Xue Gu
Background: Despite therapeutic advances in the early-stage triple negative breast cancer (TNBC) setting, residual disease (RD) following neoadjuvant therapy remains a key predictor of a worse prognosis and is a major obstacle to improving patient outcomes. Methods: To better characterize RD and identify survival associated features, we performed comprehensive transcriptomic profiling of 340 pre-treatment stage II/III TNBCs and 70 matched post-treatment RD samples from the randomized CALGB 40603 (Alliance) Phase 2 clinical trial. Preclinical treatment strategies mimicking RD patients were explored using Antibody Drug Conjugate (ADC) treatment in patient derived xenograft (PDX) mouse models. Results: Our study shows that prognostic genomic features measured prior to treatment may differ from prognostic features measured after treatment from RD specimens. Specifically, we identified that patients with a genomic PAM50 subtype of Basal-like in RD specimens have a poor survival outcome and their matching pre-treatment tumors are characterized by elevated chromosomal amplifications of oncogenic drivers (i.e., MYC, CDK6, and CCND1) as well as significantly reduced B- and T-cell expression features. Paired analyses of Basal-like RD and matched pre-treatment tumors reveal further lymphocyte depletion in the RD, along with lower expression of MHC class I and interferon signaling, indicating an immune-cold RD microenvironment. Treatment of a Basal-like and conventional chemotherapy-resistant PDX model, resembling Basal-like RD, with sacituzumab govitecan or trastuzumab deruxtecan produced a marked antitumor response. Conclusion: RD biology differs from pre-treatment tumors, with Basal-like subtype RD following neoadjuvant chemotherapy being immune cold and associated with poor survival. Pre-clinical modeling suggests that this high-risk group may benefit from adjuvant ADC therapy. Trial registration: ClinicalTrials.gov NCT00861705 Funding: National Cancer Institute (NCI) U10CA180821 (Alliance for Clinical Trials in Oncology) NCI U24CA176171 (Alliance for Clinical Trials in Oncology) NCI UG1CA233373 (Alliance for Clinical Trials in Oncology) NCI Breast SPORE program P50-CA058223 (CMP) Susan G. Komen SAC-160074 (CMP, PDR) Breast Cancer Research Foundation BCRF-23-127 (CMP) NCI R01-CA229409 (CMP) UNC LCCC Triple Negative Breast Cancer Center (CMP)
Patrick D. Rädler, Brooke M. Felsheim, Aranzazu Fernandez-Martinez, Adam D. Pfefferle, Michele C. Hayward, Baljit Singh, William Sikov, Lisa A. Carey, Charles M. Perou
The cyclic GMP-AMP synthase (cGAS)–stimulator of interferon genes (STING) pathway is a key component of innate immunity, linking DNA detection to inflammatory and antiviral responses. Originally identified as a sensor for microbial DNA, cGAS is now understood to also respond to endogenous cytosolic DNA, and the pathway has been implicated in a wide range of physiological and pathological processes, including cancer, autoimmunity, neuroinflammation, and aging. This review series, organized by Dr. Alex Stegh, consolidates current knowledge and highlights emerging developments that may lead to therapeutic targeting of the cGAS-STING pathway across a range of disorders.
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