243. In vitro culture significantly reduces differences in gene expression profiles between myometrial and fibroid smooth muscle cells

2005 ◽  
Vol 17 (9) ◽  
pp. 96
Author(s):  
M. Zaitseva ◽  
P. A. W. Rogers

Fibroids are benign neoplasms of the smooth muscle cells of the uterus. Cultured myometrial (M) and fibroid (F) smooth muscle cells (SMC) have been widely used as a model for the study of fibroid growth. Although it has been shown that FSMC can behave differently in culture to MSMC, it is not clear how relevant the cultured cells and their responses are to the in-vivo situation. The aim of the present study was to compare gene expression profiles of M and F tissue to cells isolated from the same tissue and cultured for up to 3 passages. M and F were collected from hysterectomy specimens (n = 6), part was snap frozen for RNA and the rest used to isolate SMC, which were cultured for 3 passages and RNA was collected at passage 0 (P0) and 3 (P3). 36 microarrays were performed on 8K human cDNA slides, 6 per each specimen (3 for M and 3 for F: tissue, cell at P0 and P3) against reference RNA. Analysis revealed significant differences between tissues and cultured cells. Independent clustering assigned tissues versus cells into two distinct groups based on their expression profiles. Parametric ANOVA with Benjamini-Hochberg correction and post-hoc testing was used to determine similarities and differences between tissues and cells. 128 genes were found to be statistically different between M and F tissue, 66 between MSMC and FSMC at P0, and only 9 at P3. More than 1100 genes were significantly changed between tissues and cultured cells, with 648 genes common between both M and F cells at P0 and P3. Similar numbers of genes were up regulated as were down regulated. Expression profiles of genes of interest including estrogen receptor α and progesterone receptor were also validated using real-time PCR. This is the first study to compare gene expression of in vivo and in vitro fibroid and myometrial SMC. The results demonstrate that large changes occur in SMC gene expression in culture, reducing differences between myometrial and fibroid cells. This study indicates that results of in vitro studies should be interpreted with caution as many genes have an altered gene expression profile in culture.

2000 ◽  
Vol 6 (11) ◽  
pp. 983-991 ◽  
Author(s):  
Levent M. Akyürek ◽  
Zhi-Yong Yang ◽  
Kazunori Aoki ◽  
Hong San ◽  
Gary J. Nabel ◽  
...  

2020 ◽  
Vol 318 (2) ◽  
pp. F285-F297 ◽  
Author(s):  
Mohammad Saleem ◽  
Conrad P. Hodgkinson ◽  
Liang Xiao ◽  
Juan A. Gimenez-Bastida ◽  
Megan L. Rasmussen ◽  
...  

Juxtaglomerular (JG) cells, major sources of renin, differentiate from metanephric mesenchymal cells that give rise to JG cells or a subset of smooth muscle cells of the renal afferent arteriole. During periods of dehydration and salt deprivation, renal mesenchymal stromal cells (MSCs) differentiate from JG cells. JG cells undergo expansion and smooth muscle cells redifferentiate to express renin along the afferent arteriole. Gene expression profiling comparing resident renal MSCs with JG cells indicates that the transcription factor Sox6 is highly expressed in JG cells in the adult kidney. In vitro, loss of Sox6 expression reduces differentiation of renal MSCs to renin-producing cells. In vivo, Sox6 expression is upregulated after a low-Na+ diet and furosemide. Importantly, knockout of Sox6 in Ren1d+ cells halts the increase in renin-expressing cells normally seen during a low-Na+ diet and furosemide as well as the typical increase in renin. Furthermore, Sox6 ablation in renin-expressing cells halts the recruitment of smooth muscle cells along the afferent arteriole, which normally express renin under these conditions. These results support a previously undefined role for Sox6 in renin expression.


2021 ◽  
Author(s):  
Milagros Romay ◽  
Feiyang Ma ◽  
Gloria Hernandez ◽  
Marie Vandestienne ◽  
Todd Kimball ◽  
...  

Abstract Pathologies of large vessels, such as atherosclerosis and aneurysms tend to emerge at specific sites. The consistency in their distribution suggests that a combination of unique local stressors, including both physical forces and specific gene expression profiles are confounding factors in disease etiology. Here we used single-cell RNA sequencing to identify signatures in smooth muscle cells with site-restricted predominance to uncover potentially relevant gene products. We showed that a small cohort of transcripts (5.5%) display preferential expression at specific sites of the vascular tree and in accordance with their embryological origin. Importantly, in silico studies revealed that several of these genes mapped to linkage studies for which no specific disease-causing candidates had been previously found. One of these candidates was Mcam/CD146 that mapped to the familial aortic aneurysm 1 (FAA1) locus identified by linkage analysis two decades ago. We showed that Mcam was significantly reduced in the AngII / hypercholesterolemic model of aortic aneurysm and further demonstrated that absence of the gene in mice resulted in larger lesions and accelerated death due to dissection. Our study highlighted site-specific alterations in gene expression profiles of smooth muscle cells that yield important insight in understanding site-specific vascular pathologies.


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