Platelet-Derived Growth Factor Promotes Glomerular Mesangial Cells Differentiation of Human Bone Marrow Hematopoietic
Surekha Kattaru1, Samundeshwari Echambadi Loganathan1, Sireesha Kodavala1
1Stem Cell Laboratory, Department of Biotechnology, Sri Venkateswara Institute of Medical Sciences, Tirupati, Andhra Pradesh, India.
Insights
Hematopoietic stem cells (HSCs) can regenerate damaged glomeruli by differentiating into mesangial cells (MCs). This study details the process, showing HSC-derived MCs can restore kidney function, offering hope for glomerular disease treatment.
Area of Science:
- Nephrology
- Stem Cell Biology
- Regenerative Medicine
Background:
- Glomerular filtration relies on podocyte, endothelial, and mesangial cell (MC) interactions.
- Disturbances in these cells cause glomerular diseases (GD), with cell-based therapies being a promising treatment.
- Previous work demonstrated hematopoietic stem cells (HSCs) differentiate into podocytes.
Purpose of the Study:
- To investigate the differentiation of HSCs into MCs.
- To characterize the properties and functionality of these induced MCs.
- To explore the potential of HSC-based therapy for glomerular diseases.
Main Methods:
- HSCs were induced to differentiate into MCs using specific growth factors (RA, BMP-7, Activin A, EGF, FGF, PDGF).
- Cell markers (Osr1, Pax2, Wt1, Foxd1, Eya1, α-smooth muscle actin, desmin, CD44, PDGFRβ, Itga8, CD133, notch-2, telomerase) were analyzed.
- Cellular properties like phagocytosis, quiescence, proliferation (Ki-67), and functionality under varying glucose concentrations were assessed.
Main Results:
- HSCs successfully differentiated into MCs through intermediate mesoderm and metanephric mesenchyme stages.
- Induced MCs exhibited characteristic markers, phagocytic properties, quiescence, and a low proliferation rate (31.2%).
- MC functionality was confirmed by gene expression changes (angiotensinogen, ACE, TGFβ1, etc.) in response to glucose levels, indicating filtration pressure regulation.
Conclusions:
- HSCs can be differentiated into functional mesangial cells.
- These HSC-derived MCs possess characteristics suggesting their potential to rejuvenate glomeruli.
- This research supports the therapeutic potential of HSCs for treating glomerular diseases.
Abstract:
Glomerular filtration function and homeostasis are largely due to the cross-talk between podocytes, endothelial cells, and mesangial cells (MCs). Any disturbance in this association causes glomerular diseases (GD). Cell-based therapies are the best option in the treatment of GD. It is contemplated that hematopoietic stem cells (HSCs) are best suited to regenerate these cells; earlier, we have shown the differentiation of HSCs into podocytes. In this study, MCs formation was initiated with retinoic acid (RA), BMP-7, and Activin A, resulting in comma-shaped intermediate mesoderm (IM) cells prominently expressing Osr1. Followed by inducing with EGF, FGF, and BMP-7, which resulted in elongated metanephric mesenchyme (MM) cells conspicuously expressing Pax2, Wt1, Foxd1, and Eya1. Finally, MM cells were induced with platelet-derived growth factor to form polygonal-shaped MCs expressing α-smooth muscle actin, desmin, CD44, and PDGFRβ. The growing MCs showed positivity to periodic acid Schiff's, and ANAE staining with a prominent expression of the Itga8 elucidating phagocytic property of MCs. These MCs showed conspicuous expression of CD133, notch-2, and telomerase, determining the quiescence nature with a 31.2% proliferation rate revealed through Ki-67 staining. The functionality of MCs was assessed by growing MCs in 5.5 and 25 mM glucose concentrations, and noticeable expression of angiotensinogen, angiotensin-I and II, angiotensin-converting enzyme, collagen-4, fibronectin, and TGFβ1 was observed in 25 mM concentration, while lowered expression of these genes was observed in 5.5 mM concentration explaining the role of MCs in regulating the filtration pressure. All these findings demonstrate that HSCs can rejuvenate the insulted glomerulus.
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