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Malechka, V. V.

Publications and source records attributed to Malechka, V. V..

2 recordsLinked to original sources

Single-cell transcriptome of retinal myeloid cells in response to transplantation of human neurons reveals reversibility of microglial activation

The host retinal microglia and macrophage activation remains a major challenge for the integration of donor neurons following transplantation. Previously, we and others have shown that it is possible to increase donor retinal ganglion cell (RGC) survival by inhibiting the microglia-RGC interaction with Annexin V or through reprogramming microglia with the soluble Fas ligand. However, the exact mechanisms of the microglia/macrophage activation and their heterogeneity following transplantation remain unknown. To address this question, the donor RGC were differentiated from Brn3b-Tdtomato-Thy1.2 human embryonic stem cells using a 3D protocol, followed by dissociation and RGC purification. RGC were delivered subretinally (1.5x104 viable cells/eye) into 3-6-month-old CX3CR1GFPknock-in mice. Three days after transplantation retinas were dissociated into single-cell suspension and GFP-positive myeloid cells isolated using FACS. Of the sorted cells, up to 10,000 viable cells per sample were used for single-cell RNA library preparation and sequenced using the 10X Genomics Chromium platform. In addition, several retinas were fixed and stained for donor RGC (mCherry) and host microglia/macrophages (Iba1). RNA Velocity was used to reconstruct the myeloid cell population and activation trajectory from scRNAseq data. We observed continuous bi-directional transition of microglia/macrophages from a homeostatic to an activated state. We also observed that the response to the transplant falls into the classic disease-associated-microglia (DAM) activation paradigm with a decrease in expression of the homeostatic gene Tmem119 and an increase in expression of disease-associated genes including Apoe, Lgals3, and Spp1. Our findings show that the host retinal myeloid cell population undergoes activation upon transplantation of stem-cell derived donor RGC, with a molecular profile of the activated cells similar to that of activated myeloid cells associated with neurodegenerative diseases of the brain and the eye. Advanced integrated transcriptomic analysis shows separate activated-to-homeostatic and homeostatic-to-activated trajectories suggesting the reversibility of this process.

neuroscience↗

Optimizing Tissue Clearing Methods for Improved Imaging of Whole-Mount Retinas

Gene and cell therapies are promising approaches for restoring vision in hereditary and advanced optic neuropathies. However, these therapeutic approaches must be accurately evaluated through a combination of methods, including advanced imaging, to reach the clinic. We present a whole-mount tissue-clearing methodology to improve imaging of donor neuron integration in the retina following cell transplantation in mice. Mouse retinas were processed using five different clearing methods, comparing tissue transparency, pigmentation, and immunohistochemical clarity. Among the tested methods, ScaleS consistently outperformed its peers, demonstrating a 46% increase in tissue transparency and an 89% increase in immunohistochemical clarity compared to controls. We developed a modified version of ScaleS, termed ScaleH, by adding polyvinyl alcohol to reduce fluorescence decay and enhance sample stability. ScaleH maintained fluorescence stability over extended periods (32% less decay) and proved compatible with immunolabeling and endogenous fluorescent reporters, enabling improved visualization of transplanted human stem cell-derived retinal neurons in the mouse retina. Moreover, ScaleH also improved optic nerve imaging, demonstrating the potential for broader neurobiological applications. Our clearing workflow supports robust, high-resolution imaging for evaluating the integration of transplanted cells in regenerative studies.

bioengineering↗