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Adult stem cells are dynamic and essential components that maintain the adult body form1. Adult stem cells can also serve to counteract damage that the body incurs during disease states, and the dysfunction or loss of adult stem cells can lead to the decline of organ function and has been implicated to drive cancer malignancies and contribute to aging. Adult stem cells exhibit cellular properties that distinguish them from differentiated cell types. Upon cell division, adult stem cells are capable of self-renewal and the production of progenitor cells that in turn can give rise to distinct differentiated offspring. There is great interest in understanding the pathways that regulate the cell fate decisions and potency of adult stem cells because of their important roles in tissue homeostasis1. For example, many scientists currently seek to identify the signals that maintain various adult stem cell populations in their niche, or specialized microenvironment, and how this niche is impacted by humoral factors.
Adult hematopoietic stem cells (HSCs) are pluripotent cells that fuel the continual rejuvenation of blood cells in animals8. Hematopoiesis is a vibrant process that is constantly ongoing during the life of a vertebrate organism because the mature differentiated blood cell types are short-lived and hence must be replenished regularly. As they divide, HSCs supply this crucial demand by self-renewing and producing a series of progenitors that give rise to the erythroid, megakaryocyte, lymphoid and myeloid lineages. Each of these blood cell types performs unique functions in the circulation, including providing gas exchange to tissue, a way for sealing injuries to blood vessels by means of clot formation, or defense mechanisms against invading pathogens. While HSCs have been recognized for many years, a plethora of fascinating questions remain unanswered about these amazing cells. Recent studies have identified subclasses of HSCs with different long-term self-renewal properties, and the elucidation of niche components and signals that modulate HSC behavior8. The zebrafish is now among the cornerstones of hematopoiesis research paradigms, based on the genetic and molecular attributes of this animal model8. Research utilizing the zebrafish has led to novel insights about HSC biology that are conserved with higher vertebrates like mammals, emphasizing the biomedical relevance of fish blood investigations8.
Historically, knowledge about HSCs has paved the way for the expeditions seeking to discover if other body organs are maintained by adult stem cells. Numerous adult stem cell populations are now appreciated to exist, ranging across diverse structures from the brain to the intestine, skin, and skeletal muscle. Continued efforts in the stem cell field seek to identify how adult stem cells and even other differentiated cell types can display enhanced potency in various settings.
With respect to the kidney, there has been great debate among nephrologists as to whether renal stem cells exist16. Independent findings have documented populations of kidney cells in mammals that possess varying degrees of regenerative potential, but a cohesive understanding of these reports has yet to be achieved. Interestingly, there is strong evidence to support the notion that many fish species possess cells that can robustly fuel regeneration of damaged nephrons, as well as grow entirely new nephrons during adulthood9. Recent work has identified the molecular hallmarks of adult kidney stem cells in the zebrafish10,11, and demonstrated the self-renewal potency of these so-called renal stem/progenitor cells (RPCs)11. Future studies are needed to ascertain whether analogous kidney cells are present in mammals. Nevertheless, continued investigations about the cellular and molecular mechanisms that regulate fish RPCs may provide insight into how regenerative feats may be stimulated in the mammalian kidney. It is evident that much remains to be understood about RPCs, and that the many tools now available to the zebrafish researcher can be implemented to tackle these intriguing questions.
In this protocol, we describe our method for the anatomical identification and dissection of the adult zebrafish kidney. Alternative steps can be used to dissect the kidney, such as opening the abdominal cavity with a ventral incision using dissection scissors; however, we have encountered the most success in accessing the entire kidney when the abdominal wall is pinned open and the head is removed. Blood and kidney researchers alike who wish to isolate and work with these cell types can use either dissection method. It should be noted that the method we describe for isolating and working with the zebrafish adult kidney is certainly not limited to scientists who wish to pursue questions of adult stem cell biology, as the dissection of this organ can facilitate studies for those researchers pursuing investigations on topics ranging from physiology to aging. Further, this method can be coupled with other technologies such as transgenics, so as to molecularly label and then purify and study discrete subpopulations of blood or kidney cells from wildtype or genetically mutant zebrafish11. Looking forward, such detailed purification procedures of stem and progenitor cell types is vital to gaining knowledge about how their behavior is regulated, as operational tests such as transplantation or progenitor culturing constitute the basis by which the potency and identity of these cells is defined. Recent advances in hematopoietic progenitor culture methods open many new avenues for study, and may be adapted to culturing of renal populations17. Zebrafish chemical genetics have been successful in the identification of pathways that modulate HSCs and renal progenitors in various contexts18-20, and will continue to be a useful avenue to test in combination with the above cell biology techniques. Taken together, there have been a number of groundbreaking contributions to the fields of hematology and nephrology using the zebrafish model, and continued research in these arenas promises to wield further transformative insights in the coming years.