Nephron progenitor cell commitment: Striking the right balance

2019 ◽  
Vol 91 ◽  
pp. 94-103 ◽  
Author(s):  
Lori L. O’Brien
Blood ◽  
1984 ◽  
Vol 63 (2) ◽  
pp. 287-297 ◽  
Author(s):  
RH Lambertsen ◽  
L Weiss

Hematopoietic colonies were studied in the marrow of alternate fraction- irradiated mice by light microscopic stereology to investigate the microenvironmental organization of marrow. Separate analyses of the relative colony cell density of undifferentiated, granulocytic, erythrocytic, and macrophage colonies in four marrow zones were carried out at 3, 4, and 5 days postirradiation (PI) for all colonies, all periarterial colonies, and all non-periarterial colonies. The results demonstrate a differential colony cell distribution that does not appear to be due to a preferential distribution of certain colony types around arteries. Undifferentiated colony cells showed a consistent predilection for endosteal and periarterial regions, with the majority of colony cells occurring along bone. Erythrocytic colony cells proliferated initially in intermediate and central marrow zones and along arteries. Granulocytic colony cells occurred in all areas at 3 days PI, but increased in density along bone thereafter. Macrophage colony cells occurred in all zones at 4 days PI, but at 5 days were concentrated in subosteal and central regions. Macrophage colonies also occurred periarterially. To explain these findings and the organization of normal bone marrow, we present a detailed model of the microenvironmental organization of intramedullary hematopoiesis. This model portrays the stroma as engendering distinct microenvironments for stem cell replication, stem cell commitment, and early progenitor cell proliferation.


ESC CardioMed ◽  
2018 ◽  
pp. 33-36
Author(s):  
Robert G. Kelly

The embryonic heart forms in anterior lateral splanchnic mesoderm and is derived from Mesp1-expressing progenitor cells. During embryonic folding, the earliest differentiating progenitor cells form the linear heart tube in the ventral midline. The heart tube extends in length and loops to the right as new myocardium is progressively added at the venous and arterial poles from multipotent second heart field cardiovascular progenitor cells in contiguous pharyngeal mesoderm. While the linear heart tube gives rise to the left ventricle, the right ventricle, outflow tract, and a large part of atrial myocardium are derived from the second heart field. Progressive myocardial differentiation is controlled by intercellular signals within the progenitor cell niche. The embryonic heart is the template for septation and growth of the four-chambered definitive heart and defects in progenitor cell deployment result in a spectrum of common forms of congenital heart defects.


Blood ◽  
1984 ◽  
Vol 63 (2) ◽  
pp. 287-297 ◽  
Author(s):  
RH Lambertsen ◽  
L Weiss

Abstract Hematopoietic colonies were studied in the marrow of alternate fraction- irradiated mice by light microscopic stereology to investigate the microenvironmental organization of marrow. Separate analyses of the relative colony cell density of undifferentiated, granulocytic, erythrocytic, and macrophage colonies in four marrow zones were carried out at 3, 4, and 5 days postirradiation (PI) for all colonies, all periarterial colonies, and all non-periarterial colonies. The results demonstrate a differential colony cell distribution that does not appear to be due to a preferential distribution of certain colony types around arteries. Undifferentiated colony cells showed a consistent predilection for endosteal and periarterial regions, with the majority of colony cells occurring along bone. Erythrocytic colony cells proliferated initially in intermediate and central marrow zones and along arteries. Granulocytic colony cells occurred in all areas at 3 days PI, but increased in density along bone thereafter. Macrophage colony cells occurred in all zones at 4 days PI, but at 5 days were concentrated in subosteal and central regions. Macrophage colonies also occurred periarterially. To explain these findings and the organization of normal bone marrow, we present a detailed model of the microenvironmental organization of intramedullary hematopoiesis. This model portrays the stroma as engendering distinct microenvironments for stem cell replication, stem cell commitment, and early progenitor cell proliferation.


2019 ◽  
Vol 13 (9) ◽  
pp. 1724-1731 ◽  
Author(s):  
Maria Giovanna Francipane ◽  
Bing Han ◽  
Leif Oxburgh ◽  
Sunder Sims‐Lucas ◽  
Zhongwei Li ◽  
...  

Author(s):  
Giovane G Tortelote ◽  
Mariel Colón-Leyva ◽  
Zubaida Saifudeen

2006 ◽  
Vol 6 (7) ◽  
pp. 551-555 ◽  
Author(s):  
Eric J. Jenkinson ◽  
William E. Jenkinson ◽  
Simona W. Rossi ◽  
Graham Anderson
Keyword(s):  
T Cell ◽  

2019 ◽  
Vol 34 (Supplement_1) ◽  
Author(s):  
Toshinari Fujimoto ◽  
Shuichiro Yamanaka ◽  
Tsuyoshi Takamura ◽  
Yatsumu Saito ◽  
Susumu Tajiri ◽  
...  

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