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Salas, S. M.

Publications and source records attributed to Salas, S. M..

3 recordsLinked to original sources

Oligodendroglia vulnerability in the human dorsal striatum in Parkinson's disease

Oligodendroglia are the responsible cells for myelination in the central nervous system and their involvement in Parkinsons disease (PD) is poorly understood. We performed snRNA-seq and image-based spatial transcriptomics of human caudate nucleus and putamen (dorsal striatum) from PD and Control brain donors to elucidate the diversity of oligodendroglia and how they are affected by the disease. We have defined fifteen subclasses, from precursor to mature cells, four of which are disease-associated. These PD-specific populations are characterized by the overexpression of heat shock proteins and distinct expression signatures, including immune responses and myelination alterations. We have also identified disruptions in cell communication and oligodendrocyte development, evidenced by changes in neurotransmitter receptors expression and cell adhesion molecules. These transcriptomic changes correlated with impaired myelin integrity and altered oligodendrocyte distribution in the striatum. Thus, we uncover oligodendroglia as a critical cell type in PD and a potential new therapeutic target.

neuroscience↗

Spatial Dynamics of the Developing Human Heart

Heart development relies on a topologically defined interplay between a diverse array of cardiac cells. We finely curated spatial and single-cell measurements with subcellular imaging-based transcriptomics validation to explore spatial dynamics during early human cardiogenesis. Analyzing almost 80,000 individual cells and 70,000 spatially barcoded tissue regions between the 5.5th and 14th postconceptional weeks, we identified 31 coarse- and 72 fine-grained cell states and mapped them to highly resolved cardiac cellular niches. We provide novel insight into the development of the cardiac pacemaker-conduction system, heart valves, and atrial septum, and decipher heterogeneity of the hitherto elusive cardiac fibroblast population. Furthermore, we describe the formation of cardiac autonomic innervation and present the first spatial account of chromaffin cells in the fetal human heart. We support independent exploration of our datasets by an open-access, spatially centric interactive viewer. In summary, our study delineates the cellular and molecular landscape of the developing hearts architecture, offering links to genetic causes of heart disease.

developmental biology↗

High-parametric protein maps reveal the spatial organization in early-developing human lung

The respiratory system, including the lungs, is essential for terrestrial life. While recent research has advanced our understanding of lung development, much still relies on animal models and transcriptome analyses. In this study conducted within the Human Developmental Cell Atlas (HDCA) initiative, we describe the protein-level spatiotemporal organization of the lung during the first trimester of human gestation. Using high-parametric tissue imaging with a 30-plex antibody panel, we analyzed human lung samples from 6 to 13 post-conception weeks, generating data from over 2 million cells across five developmental timepoints. We present a resource detailing spatially resolved cell type composition of the developing human lung, including proliferative states, immune cell patterns, spatial arrangement traits, and their temporal evolution. This represents an extensive single-cell resolved protein-level examination of the developing human lungs and provides a valuable resource for further research into the developmental roots of human respiratory health and disease.

developmental biology↗