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Biology subjects

Robles, F.

Publications and source records attributed to Robles, F..

2 recordsLinked to original sources

Label- and slide-free multispectral quantitative epi-illumination deep-UV microscopy

Label-free and slide-free imaging is highly desired in clinical pathology because it holds the potential to avoid time- and labor-intensive tissue processing and chemical staining while preserving molecular information for downstream analyses. Deep-ultraviolet (UV) microscopy offers high-resolution, label-free molecular contrast via short wavelengths and intrinsic biomolecular absorption, but prior implementations have been limited to the analysis of thin sections and cell monolayers. Here, we present a fast, low-cost, LED-based, epi-illumination deep-UV microscope (epi-DUV) for label- and slide-free imaging of fresh, thick tissues. Using 255 nm and 280 nm absorption images, and tryptophan autofluorescence, the method yields quantitative maps of nucleic acid mass, protein mass, and quantum yield. Moreover, H&E-like contrast can be generated using native 255-nm absorption images. The system achieves 0.5 {micro}m lateral resolution with an effective slice thickness of [~]6 {micro}m across a 707 {micro}m x 707 {micro}m field of view and uses [~]330-ms exposure. To the best of our knowledge, this is the first demonstration of quantitative deep-UV molecular imaging of fresh, unlabeled thick tissues. Epi-DUV has significant potential to streamline the histopathology workflow while adding objective molecular readouts, enabling point-of-care assessment of unprocessed specimens (e.g., rapid intraoperative evaluation).

bioengineering↗

Impaired Sertoli-Spermatogonia Interactions Contribute to Oligospermia and Infertility in F1 Captive-bred Male Solea senegalensis

Reproductive dysfunction of captive-bred males of the Senegalese sole (Solea senegalensis) represents a significant bottleneck for its aquaculture, as these fish exhibit reduced sperm production and impaired fertility compared to wild-bred counterparts acclimated to farm conditions. To elucidate the cellular and molecular mechanisms underlying this phenomenon, single-nuclei RNA sequencing was performed on gonadal tissue from adult captive-bred and wild-bred males. The analysis yielded a high-quality dataset comprising [~]80.000 cells, which were grouped into eleven distinct clusters representing all major germline and somatic cell types, including spermatogonial stem cells, differentiating spermatogonia, spermatocytes, spermatids, Sertoli cells, Leydig cells, immune cells, and peritubular myoid cells. It is noteworthy that captive-bred males exhibited a marked overrepresentation of proliferative spermatogonia and a significant reduction in mature spermatids, suggesting a disruption in the progression of spermatogenesis. Differential expression and functional enrichment analyses revealed that spermatogonial cells in captive-bred males displayed heightened translational activity alongside downregulation of pathways related to cell-cell communication and interaction. Focused cell-cell communication analyses further indicated defective Sertoli-spermatogonia interactions as a key factor contributing to oligospermia and infertility of captive-bred males. This study provides the first single-nuclei transcriptomic atlas of the Senegalese sole male gonad, offering valuable insights into the molecular basis of reproductive failure in captivity related to gonadal development. The findings of the study will inform future strategies to enhance selective breeding and improve aquaculture productivity for this economically important species.

genomics↗