Mazloum et al. report that polycystin-1 and the primary cilium govern the composition, mechanics, and shape of the tubular basement membrane, and that remodeling of this matrix initiates tubule dilation in autosomal dominant polycystic kidney disease. The cover image is a false-colored transmission electron micrograph of the thinned tubular basement membrane separating two polycystin-1–deficient tubular cells.
Sphingosine-1-phosphate lyase insufficiency syndrome (SPLIS) is a rare condition causing nephrotic syndrome, neuropathy, and other manifestations. SPLIS is caused by mutations in SGPL1, which encodes sphingosine-1-phosphate lyase (SPL), a pyridoxal 5′-phosphate (PLP)-dependent enzyme needed to degrade the bioactive sphingolipid sphingosine-1-phosphate (S1P). Supplementation with the PLP precursor pyridoxine benefits some individuals with PLP-dependent enzymopathies. We investigated whether pyridoxine has therapeutic activity in SPLIS. Neurological improvement, plasma S1P normalization, and increased SPL activity in patient-derived fibroblasts were observed after pyridoxine supplementation in a patient with R222Q-variant SPLIS. Additionally, PLP dose-dependently augmented recombinant R222Q-variant SPL activity. To further explore pyridoxine’s effects, gene editing was employed to create an R222Q-variant SPLIS mouse model. SPLR222Q mice fed pyridoxine-enriched chow lacked obvious phenotypes. However, SPL inactivation, S1P accumulation, proteinuria, and glomerulosclerosis developed in SPLR222Q but not WT mice fed chow with reduced pyridoxine. Ultrastructural analysis and super-resolution microscopy showed podocyte loss and foot process effacement. Transcriptional profiling revealed patterns of cytokine upregulation and extracellular matrix remodeling. Inhibiting S1P production or RhoA/ROCK signaling prevented nephrosis in SPLR222Q mice fed chow lacking pyridoxine. Our findings establish a SPLIS mouse model that recapitulates R222Q-variant SPLIS, demonstrates its responsiveness to pyridoxine, and implicates a S1P/RhoA/ROCK pathway in its pathophysiology. Running Title: Cofactor supplementation in R222Q-variant SPLIS
Ranjha Khan, Maria L. Allende, Ehtesham Khalid, Joanna Y. Lee, Everett Stone, Max Rodnick-Smith, Audrey Izuhara, Vadym Buncha, Georgina Gyarmati, Janos Peti-Peterdi, Ranya Al-Khaledy, Jeffrey B. Hodgin, Gizachew Tassew, Babak Oskouian, Alina Chen, Yu-Tang Chang, Rachel Zhang, Richard L. Proia, Julie D. Saba
Metabolic dysfunction-associated steatohepatitis (MASH) is rising globally despite recent therapeutic advances, highlighting the need to identify new targetable pathways. While dysregulated lipid and amino acid metabolism are established features of MASH, the interplay between these two metabolic pathways remains unexplored. Here, metabolomics of livers from humans and mice with MASH uncovered depletion of lipidated amino acids, where these two distinctive pathways converge. Notably, hepatic levels of N-oleoyl-leucine (C18:1-Leu) were inversely correlated with the severity of MASH-fibrosis. The C18:1-Leu-regulating enzyme, peptidase M20 domain containing 1 (PM20D1), was suppressed in MASH due to attenuated de novo transcription, and stable-isotope tracing confirmed impaired hepatic biosynthesis of C18:1-Leu in MASH. Hepatocyte-specific PM20D1 ablation lowered hepatic C18:1-Leu and exacerbated MASH, whereas hepatocyte-specific PM20D1 overexpression restored C18:1-Leu and ameliorated both MASH progression and established disease. Exogenous administration of C18:1-Leu similarly ameliorated MASH-fibrosis. In silico modeling, transcriptomics, metabolic flux analyses and hepatocyte-specific in vivo manipulations revealed that C18:1-Leu binds and activates peroxisome proliferator-activated receptor alpha to suppress C-C motif chemokine ligand 2, concurrently enhancing fatty acid β-oxidation and attenuating monocyte recruitment to reduce MASH-fibrosis. These findings highlight C18:1-Leu deficiency as a driver and a therapeutic target in MASH-fibrosis, warranting further clinical evaluation.
Sumit Kumar Anand, Sandeep Das, Fabio Arias, Koral S.E. Richard, Sumati Rohilla, Alia Ghrayeb, M. Peyton McKinney, Lu Wang, Lin Tan, Jibin Ding, Dhananjay Kumar, Nilesh Pandey, Jennifer Lee, Ying Zhao, Suman Mohajan, Gurranna Male, Kelley Nunez, Alexandra C. Finney, Brenna H. Pearson-Gallion, Reethika Gade, Jemiah Maxie, Yu Liu, Harpreet Kaur, Rajan Pandit, Cyrine Ben Dhaou, Joseph Eniafe, Xiaolu Zhang, Zhipeng Liu, Andrew D. Yurochko, Minerva T. Garcia-Barrio, Babak Razani, Fei Chang, Francisco J. Schopfer, Xin Huang, Bishuang Cai, Eyal Gottlieb, Bo Wen, Duxin Sun, Wanqing Liu, Paul T. Thevenot, Ari J. Cohen, Jifeng Zhang, Y. Eugene Chen, A. Wayne Orr, Nirav Dhanesha, Arif Yurdagul Jr., Oren Rom
Receptor activator of NFκB ligand (RANKL) is important for bone metabolism, but also modulates immune processes. We showed that mast cells (MCs) are involved in RANKL regulation, but the importance of MC-derived RANKL in skin inflammation has not yet been investigated. In contact hypersensitivity (CHS), the absence of MC-derived RANKL led to reduced skin inflammation due to impaired leukocyte infiltration and blood lymphopenia. Surprisingly, we observed a massive hyperplasia of the distant inguinal lymph nodes in the absence of MC-RANKL. Using adoptive transfers, flow cytometry and whole-mount 3D imaging, we demonstrated that this was not caused by structural maladaptation, but rather by the inability of lymphocytes to exit in a timely manner. Importantly, RANKL deletion in skin MCs only replicated the effect of LN hyperplasia and blood lymphopenia. Moreover, MCs were involved in serum sphingosine-1-phosphate (S1P) regulation during sensitization and challenge. Intravascular administration of S1P restored timely lymphocyte egress, demonstrating a MC-induced organ-spanning RANKL-S1P axis. Consequently, peripheral skin MC-derived RANKL is essential for the timely lymphocyte egress from distant LNs, which may have important implications for the targeted treatment of inflammatory skin diseases.
Konstantinos Katsoulis-Dimitriou, Waqar Umer, Laura Knop, Tanja Schickschneit, Aaron Hoffmann, Ali El-Bizri, Lea M. Schmitter, Kathleen Baumgart, Nouria Jantz-Naeem, Vladyslava Dovhan, Charlotte Heidelbach, Lars Philipsen, Andreas J. Müller, Stephan Fricke, Sascha Kahlfuß, Thomas Schüler, Jan Dudeck, Anne Dudeck
Oil-producing sebaceous glands (SGs), attached to the upper/ middle portion of hair follicles, are indispensable for maintaining skin hydration, and their dysfunction leads to dry skin. However, the molecular mechanisms underlying regulation of SG stem cells remain largely unknown. We identified transcription factor KROX20 as a marker of SG stem cells that sustains their stemness throughout SG morphogenesis and homeostasis. We developed an inducible mouse model in which ablation of KROX20-positive cells causes SG loss and rapidly and robustly induces dry, flaky, alopecia symptoms following induction. This model, termed Xeroflacia (Xero = xerosis, fla = flaky, cia = alopecia), provides a tool for studying the biology of dry skin. Furthermore, we found that KROX20 directly regulates Notch1 transcription to orchestrate the balance between SG stem cell self-renewal and differentiation. Small molecule drug modulation of Notch1 signaling to activate or inhibit the pathway enabled us to regulate SG differentiation to maintain skin oil levels, providing a proof-of-principle that other signaling pathways downstream of Krox20 could be potential therapeutic targets for sebaceous gland-related diseases.
Yumeng Zhang, Pernelle Pulh, Michelle F. Pan, Yi He, Juanzhu Yan, Annie Li, Renée M. McKay, Lu Q. Le
Chronic Pseudomonas aeruginosa infection is a central driver of bronchiectasis and contributes to progressive lung decline in patients with cystic fibrosis (CF), even in the era of CFTR modulators. A major limitation in the field is that conventional mouse models fail to develop persistent, biofilm-associated lung infection, restricting mechanistic studies and preclinical evaluation. Here, we establish clinically relevant infection models by combining CF-like mouse strains (βENaC-overexpressing and CFTR-deficient mice) with agarose bead–embedded P. aeruginosa that forms persistent, tobramycin-refractory biofilms. Using intravital lung microscopy, we show that alveolar macrophages initially respond by surrounding biofilms but progressively dissociate from the biofilms during persistent infection. Neutrophils are also recruited but fail to clear bacteria. Administration of gremubamab (MEDI3902), a bispecific antibody targeting the virulence factors Psl and PcrV, preserves alveolar macrophages in persistent biofilm infection, restores bacterial sensing and phagocytosis, limits excessive neutrophilic inflammation, and significantly improves bacterial clearance and survival. Together, these findings establish a clinically relevant persistent P. aeruginosa infection model and highlight gremubamab as a promising virulence-targeted therapy to potentially overcome bacterial immune evasion while restoring host defense in mouse models of bronchiectasis and CF.
Wanhai Qin, Wayne Brailsford, Stacey M. Cromer Berman, Christina S Thornton, Antonio DiGiandomenico, Paul Kubes
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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