Renal diseases represent one of the major global health burden of the 21st century. Acute kidney injury (AKI) affects one in five people admitted to hospital via emergency departments. In addition, more than 10% of people have chronic kidney disease (CKD), with high morbidity, and social impact. In other organs, discovery of endogenous stem/progenitor systems fueled understanding of disease mechanisms, establishment of novel disease models and identification of innovative treatment strategies. In the kidney, identification of an endogenous progenitor system remained a challenge until very recently. Conclusive evidence for the existence of renal progenitors (RPC) in human kidney has been reported only in the most recent years and this discovery opens a wide range of possibilities to support progress in several fields of nephrology. Indeed, we recently demonstrated that RPC are key player in the pathogenesis of kidney disorders, and their study is increasing knowledge about the mechanisms of kidney response to injury. Thus, RPC may represent potential tools and/or targets for therapeutic purposes and to promote innovative renal replacement strategies for kidney disorders. In this project, by using a series of innovative experimental models, we proposed to address a series of problems that are central to better understanding kidney pathophysiology. Specific topics are represented by acute kidney injury, chronic kidney disease, the development and progression of renal cell carcinoma, as well the use of patients-specific human RPC cultures derived from urine for personalized medicine. One essential feature of this project is the translation of this knowledge to new promising therapeutic and diagnostic approaches to kidney diseases. Consequently, these efforts will have a potential positive impact for patients and public health.