Identification and purification of hBVSC subpopulations represent a major advance in the comprehension of MSC ontogeny. There is increasing evidence indicating the perivascular origin of MSCs and the association between tissue-specific precursor cells and blood vessels22-25. In addition, the capacity to isolate homogeneous subpopulations of hBVSCs further aids the understanding of MSC heterogeneity and vascular cell biology26.
In the past few years, MECs, PCs, and ACs have been individually identified and isolated through distinct protocols in separate studies. However, no attempt has been made to purify all three hBVSC subsets simultaneously from human skeletal muscle due to the difficulties to optimize the tissue dissociation procedure and the combination of selective cell lineage markers identifying MECs, PCs, and ACs altogether. Here we described a new cell isolation protocol that allows concurrent purification of MECs, PCs, and ACs from a single human muscle biopsy by modifying the tissue dissociation process and applying a new combination of selective cell surface markers (Figure 1). For the best outcome, the critical steps in the current protocol that require additional attention include: 1. Freshness and preservation of the tissue specimen; 2. Optimization of cell yield and surface antigen preservation by careful monitoring of the digestion process and adjusting the tissue dissociation time; 3. Precise calibration of the six-color flow cytometry. These parameters are to be determined by individual laboratory according to its specific supply/equipment setup.
By implementing this new protocol, one can not only streamline the synchronous isolation of multiple hBVSC subpopulations but also facilitate utilization of hBVSCs for basic research and translational application, such as the comparison of differential cellular behaviors between hBVSC subsets and the optimization of single or combinatorial hBVSC subset(s) for various personalized therapeutic applications. However, the concurrent isolation of all three hBVSC subsets is presently limited to skeletal muscle due to the fact that MECs haven’t been identified in other human tissues. Besides, it is beyond the limitation of the current protocol to distinguish the transition and/or cellular hierarchy between these three hBVSC subpopulations.
Characterization of freshly isolated and cultured MECs, PCs, and ACs has been separately demonstrated in prior studies MECs in culture maintain the expression of the myogenic marker CD56 but gradually lose the expression of the EC markers CD34 and CD144. At the clonal level, MECs express MSC markers, including CD29, CD44, CD90, and CD105, and display mesenchymal differentiation potentials such as chondrogenesis, osteogenesis, adipogenesis, and myogenesis. Additionally, clonal MECs retain their angiogenic capacity after long-term culture, forming capillary-like networks in Matrigel culture and participating in neovascularization in vivo21.
PCs, fresh or cultured, have been shown to not only express MSC markers, including CD44, CD73, CD90, and CD105, but also exhibit mesodermal developmental capacities, for example, skeletal myogenesis, osteogenesis, chondrogenesis, and adipogenesis13. PCs robustly secrete a number of trophic factors, even under hypoxia, and serve as the regenerative units through their paracrine function, direct differentiation, and cellular interaction during the tissue repair/regeneration process ACs, similar to PCs, were shown to express classic MSC markers and differentiate into major mesenchymal cell lineages18. Together with PCs, ACs have also been proposed as one of the developmental origins of MSCs. A summary comparing the cell surface marker expression, differentiation capacity, and possible translational applications between typical MSCs and hBVSCs has been listed in Table 1. Recently, Tang et al. identified multipotent vascular stem cells (MVSCs) from the tunica media of large blood vessels in rat and human29. MVSCs not only differentiate into smooth muscle cells but also contribute to vascular remodeling and neointimal hyperplasia after vascular injury29. Whether MVSCs share developmental connections with BVSCs residing in the microvasculature and small vessels requires further investigation.
The current protocol requires timely cell isolation from fresh human muscle biopsy, which, at times, may not be accessible in the clinical settings. Alternatively, based on a modified set of selective cell surface markers, it is feasible to purify MECs and PCs from cryopreserved human primary skeletal muscle cell cultures by flow cytometry30. This method allows prospective purification of two hBVSC subsets from banked human skeletal muscle culture for therapeutic purposes. Nevertheless, due to the lack of CD34 expression in cultured human muscle cells, it is not possible to further separate ACs with this particular protocol.