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Biology subjects

Helms, H.

Publications and source records attributed to Helms, H..

2 recordsLinked to original sources

Mapping and rewiring the MYBPC3 promoter for rescue of haploinsufficiency driven hypertrophic cardiomyopathy

Autosomal dominant loss-of-function variants in the gene MYBPC3 are, collectively, the most common genetic cause of hypertrophic cardiomyopathy (HCM) and are a prototype of haploinsufficient human disease. Typical for haploinsufficiency-associated genes, hundreds of unique loss-of-function pathogenic variants have been reported for MYBPC3 - therapeutic gene editing to correct each of these variants poses major regulatory and logistical hurdles. Upregulating wild-type allele expression could offer a generalizable therapeutic strategy, but the capacity to modulate native MYBPC3 transcription is unknown. Here, we present a variant-agnostic approach to rescue haploinsufficiency by mapping and rationally redesigning the MYBPC3 promoter. Using massively parallel reporter assays (MPRAs) in human induced pluripotent stem cell-derived cardiomyocytes, we performed saturation mutagenesis of the MYBPC3 promoter at single base-pair resolution. This defined a new class of clinically relevant noncoding loss-of-function variants while revealing essential cis-regulatory grammar anchored by key transcription factor binding sites (TFBSs). Furthermore, by systematically screening thousands of variant combinations, modular promoter elements, and heterologous TFBS insertions, we identified synergistic sequence edits that drive robust increases in MYBPC3 expression. Together, our findings improve the clinical interpretation of noncoding variants and establish a scalable blueprint for promoter editing to treat MYBPC3-associated HCM and other haploinsufficient diseases.

molecular biology↗

A 3D image atlas chronicling cellular and structural dynamics following lung injury identifies the aberrant expansion of endothelial cells that fail to form perfused vasculature

Intratracheally delivered bleomycin in mice is the most widely used in vivo model of pulmonary fibrosis, yet key aspects remain poorly defined, including sex-dependent responses and the temporal peak of injury. Standard 2D histology further overlooks regional heterogeneity and cannot resolve the 3D architecture or connectivity of endothelial cells (ECs). Here, we established a multi-scale 3D imaging pipeline integrating precision-cut lung slices from EC lineage-tracing mice, optical clearing, and AI-driven 3D segmentation to map cellular and structural dynamics from whole-lobe tile scans to single-cell resolution. We identified sex as a critical biological variable, with males exhibiting a delayed but more severe fibroproliferative response. Unsupervised K-means clustering identified three distinct tissue microenvironments: healthy parenchyma(KMC1), a myofibroblast-rich fibrotic core (KMC2), and a previously uncharacterized EC-dense perilesional region (KMC3) defined by massively expanded but non-perfused ECs that acquire a pro-inflammatory phenotype. This aberrant endothelial response precedes peak myofibroblast accumulation and persists beyond fibrotic resolution, leaving a vascular scar that extends into the large-vessel hierarchy. Together, this 3D image atlas, made publicly available as an interactive resource [https://mosaic-lung.com/], reveals the activated endothelium as an underexplored therapeutic target in pulmonary fibrosis.

bioengineering↗