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Bridges, J. P.

Publications and source records attributed to Bridges, J. P..

3 recordsLinked to original sources

Alveolar epithelial progenitor cells drive lung regeneration via dynamic changes in chromatin topology modulated by lineage-specific Nkx2-1 activity

Lung epithelial regeneration after acute injury requires coordination of extensive cellular and molecular processes controlling proliferation and differentiation of specialized alveolar cells to pattern the morphologically complex alveolar gas exchange surface. During regeneration, specialized Wnt-responsive alveolar epithelial progenitor (AEP) cells, a subset of alveolar type 2 (AT2) cells, proliferate and transition to alveolar type 1 (AT1) cells, though the precise molecular and epigenetic determinants of these processes remain unclear. Here, we report a refined primary murine alveolar organoid assay which recapitulates critical aspects of in vivo regeneration, providing a tractable model to dissect these regenerative processes. Clonal expansion of single AEPs generate complex alveolar organoids with extensive structural maturation and organization. These organoids contain properly patterned AT1 and AT2 cells surrounding numerous alveolar-like cavities with minimal structural contribution from mesenchymal cells, implying extensive cell autonomous regenerative function encoded in adult AEPs. Leveraging a time series of paired scRNAseq and scATACseq, we identified the AEP state at single cell resolution and described two distinct AEP to AT1 intermediate states: a widely reported Krt8+ transitional state defined by cell stress markers and a second state defined by differential activation of signaling pathways mediating AT1 cell differentiation. Transcriptional regulatory network (TRN) analysis demonstrated that these AT1 transition states were driven by distinct regulatory networks controlled in part by differential activity of Nkx2-1. Genetic ablation of Nkx2-1 in AEP-derived organoids was sufficient to cause transition to a proliferative stressed Krt8+ state characterized by disorganized, uncontrolled growth. Finally, AEP-specific deletion of Nkx2-1 in adult mice led to rapid loss of AEP state, clonal expansion, and disorganization of alveolar structure, implying a continuous requirement for Nkx2-1 in maintenance and function of adult lung progenitors. Together, these data provide new insight into cellular hierarchies in lung regeneration and implicate dynamic epigenetic maintenance via lineage transcription factors as central to control of facultative progenitor activity in AEPs.

developmental biology↗

Alveolar macrophage lipid burden correlates with clinical improvement in patients with Pulmonary Alveolar Proteinosis

Pulmonary alveolar proteinosis (PAP) is a life-threatening rare lung syndrome characterized by the accumulation of surfactant and lipid-loaded macrophages within the alveoli for which there is no cure and no approved therapies. The clinical diagnosis of PAP, often made by invasive lung biopsies and/or cytology of bronchoalveolar lavage fluid does not identify the underlying cause of disease. In addition, no biomarkers exist to inform prognosis or therapeutic options in PAP. We now report on the use of comprehensive mass spectrometry to profile and define the lipid signature of alveolar macrophages obtained from PAP patients. In addition, we quantify how these macrophage-associated lipids change during clinical treatment. Our studies demonstrate that clinical improvement in treated PAP patients is associated with a decrease in total lipid content, indicating that levels of these macrophage-associated lipids correlate with the severity of the disease.

physiology↗

Activation of GPR116/ADGRF5 by its tethered agonist requires key amino acids in extracellular loop 2 of the transmembrane domain

The mechanistic details of the tethered agonist mode of activation for adhesion GPCRs has not been completely deciphered. We set out to investigate the physiologic importance of autocatalytic cleavage upstream of the agonistic peptide sequence, an event necessary for NTF displacement and subsequent receptor activation. To examine this hypothesis, we characterized tethered agonist-mediated activation of GPR116 in vitro and in vivo. A knock-in mouse expressing a non-cleavable GPR116 mutant phenocopies the pulmonary phenotype of GPR116 knock-out mice, demonstrating that tethered agonist-mediated receptor activation is indispensable for function in vivo. Using site-directed mutagenesis and species swapping approaches we identified key conserved amino acids for GPR116 activation in the tethered agonist sequence and in extracellular loops 2/3 (ECL2/3). We further highlight residues in transmembrane7 (TM7) that mediate stronger signaling in mouse versus human GPR116 and recapitulate these findings in a model supporting tethered agonist:ECL2 interactions for GPR116 activation. Grant supportThis work was supported in part by HL131634 (JPB) from the National Heart, Lung and Blood Institute of the National Institutes of Health.

cell biology↗