1.Clinical observation of general anesthesia combined with epidural anesthesia in laparoscopic resection for rectal cancer
Dadong QIAN ; Xianlun SHI ; Zhihai ZHAO ; Miao GU ; Wenjing YIN
Chongqing Medicine 2013;(27):3217-3218
Objective To investigate the impact of different anesthesia methods on intraoperative and postoperative patients un-dergoing laparoscopic rectal cancer surgery and to explore the ideal anesthetic method for laparoscopic rectal cancer surgery .Meth-ods 40 cases of laparoscopic resection for rectal cancer ,ASAⅠ-Ⅱ grade ,were selected and randomly divided into two groups .The group A (20 cases) was performed general anesthesia combined with epidural anesthesia and the B group (20 cases) was performed systemic anesthesia .The intraoperative hemodynamics ,respiratory function ,awaking time and awaking quality evaluation were ob-served .Results The airway pressure(Paw ) and PETCO2 in the two groups were increased .The intraoperative hemodynamics in the group A was more stable than those in the group B .The awaking time and awaking quality in the group A were superior to those in the B group .Conclusion Compared with simple general anesthesia ,general anesthesia combined with epidural anesthesia for laparo-scopic rectal cancer surgery has more stable vital signs and better awaking quality ,whoich is an ideal anesthetic method for laparo-scopic rectal cancer surgery .
2.Single-Cell Landscape and a Macrophage Subset Enhancing Brown Adipocyte Function in Diabetes
Junfei GU ; Jiajia JIN ; Xiaoyu REN ; Xinjie ZHANG ; Jiaxuan LI ; Xiaowei WANG ; Shucui ZHANG ; Xianlun YIN ; Qunye ZHANG ; Zhe WANG
Diabetes & Metabolism Journal 2024;48(5):885-900
Background:
Metabolic dysregulation is a hallmark of type 2 diabetes mellitus (T2DM), in which the abnormalities in brown adipose tissue (BAT) play important roles. However, the cellular composition and function of BAT as well as its pathological significance in diabetes remain incompletely understood. Our objective is to delineate the single-cell landscape of BAT-derived stromal vascular fraction (SVF) and their characteristic alterations in T2DM rats.
Methods:
T2DM was induced in rats by intraperitoneal injection of low-dose streptozotocin and high-fat diet feeding. Single-cell mRNA sequencing was then performed on BAT samples and compared to normal rats to characterize changes in T2DM rats. Subsequently, the importance of key cell subsets in T2DM was elucidated using various functional studies.
Results:
Almost all cell types in the BAT-derived SVF of T2DM rats exhibited enhanced inflammatory responses, increased angiogenesis, and disordered glucose and lipid metabolism. The multidirectional differentiation potential of adipose tissue-derived stem cells was also reduced. Moreover, macrophages played a pivotal role in intercellular crosstalk of BAT-derived SVF. A novel Rarres2+macrophage subset promoted the differentiation and metabolic function of brown adipocytes via adipose-immune crosstalk.
Conclusion
BAT SVF exhibited strong heterogeneity in cellular composition and function and contributed to T2DM as a significant inflammation source, in which a novel macrophage subset was identified that can promote brown adipocyte function.
3.Single-Cell Landscape and a Macrophage Subset Enhancing Brown Adipocyte Function in Diabetes
Junfei GU ; Jiajia JIN ; Xiaoyu REN ; Xinjie ZHANG ; Jiaxuan LI ; Xiaowei WANG ; Shucui ZHANG ; Xianlun YIN ; Qunye ZHANG ; Zhe WANG
Diabetes & Metabolism Journal 2024;48(5):885-900
Background:
Metabolic dysregulation is a hallmark of type 2 diabetes mellitus (T2DM), in which the abnormalities in brown adipose tissue (BAT) play important roles. However, the cellular composition and function of BAT as well as its pathological significance in diabetes remain incompletely understood. Our objective is to delineate the single-cell landscape of BAT-derived stromal vascular fraction (SVF) and their characteristic alterations in T2DM rats.
Methods:
T2DM was induced in rats by intraperitoneal injection of low-dose streptozotocin and high-fat diet feeding. Single-cell mRNA sequencing was then performed on BAT samples and compared to normal rats to characterize changes in T2DM rats. Subsequently, the importance of key cell subsets in T2DM was elucidated using various functional studies.
Results:
Almost all cell types in the BAT-derived SVF of T2DM rats exhibited enhanced inflammatory responses, increased angiogenesis, and disordered glucose and lipid metabolism. The multidirectional differentiation potential of adipose tissue-derived stem cells was also reduced. Moreover, macrophages played a pivotal role in intercellular crosstalk of BAT-derived SVF. A novel Rarres2+macrophage subset promoted the differentiation and metabolic function of brown adipocytes via adipose-immune crosstalk.
Conclusion
BAT SVF exhibited strong heterogeneity in cellular composition and function and contributed to T2DM as a significant inflammation source, in which a novel macrophage subset was identified that can promote brown adipocyte function.
4.Single-Cell Landscape and a Macrophage Subset Enhancing Brown Adipocyte Function in Diabetes
Junfei GU ; Jiajia JIN ; Xiaoyu REN ; Xinjie ZHANG ; Jiaxuan LI ; Xiaowei WANG ; Shucui ZHANG ; Xianlun YIN ; Qunye ZHANG ; Zhe WANG
Diabetes & Metabolism Journal 2024;48(5):885-900
Background:
Metabolic dysregulation is a hallmark of type 2 diabetes mellitus (T2DM), in which the abnormalities in brown adipose tissue (BAT) play important roles. However, the cellular composition and function of BAT as well as its pathological significance in diabetes remain incompletely understood. Our objective is to delineate the single-cell landscape of BAT-derived stromal vascular fraction (SVF) and their characteristic alterations in T2DM rats.
Methods:
T2DM was induced in rats by intraperitoneal injection of low-dose streptozotocin and high-fat diet feeding. Single-cell mRNA sequencing was then performed on BAT samples and compared to normal rats to characterize changes in T2DM rats. Subsequently, the importance of key cell subsets in T2DM was elucidated using various functional studies.
Results:
Almost all cell types in the BAT-derived SVF of T2DM rats exhibited enhanced inflammatory responses, increased angiogenesis, and disordered glucose and lipid metabolism. The multidirectional differentiation potential of adipose tissue-derived stem cells was also reduced. Moreover, macrophages played a pivotal role in intercellular crosstalk of BAT-derived SVF. A novel Rarres2+macrophage subset promoted the differentiation and metabolic function of brown adipocytes via adipose-immune crosstalk.
Conclusion
BAT SVF exhibited strong heterogeneity in cellular composition and function and contributed to T2DM as a significant inflammation source, in which a novel macrophage subset was identified that can promote brown adipocyte function.
5.Single-Cell Landscape and a Macrophage Subset Enhancing Brown Adipocyte Function in Diabetes
Junfei GU ; Jiajia JIN ; Xiaoyu REN ; Xinjie ZHANG ; Jiaxuan LI ; Xiaowei WANG ; Shucui ZHANG ; Xianlun YIN ; Qunye ZHANG ; Zhe WANG
Diabetes & Metabolism Journal 2024;48(5):885-900
Background:
Metabolic dysregulation is a hallmark of type 2 diabetes mellitus (T2DM), in which the abnormalities in brown adipose tissue (BAT) play important roles. However, the cellular composition and function of BAT as well as its pathological significance in diabetes remain incompletely understood. Our objective is to delineate the single-cell landscape of BAT-derived stromal vascular fraction (SVF) and their characteristic alterations in T2DM rats.
Methods:
T2DM was induced in rats by intraperitoneal injection of low-dose streptozotocin and high-fat diet feeding. Single-cell mRNA sequencing was then performed on BAT samples and compared to normal rats to characterize changes in T2DM rats. Subsequently, the importance of key cell subsets in T2DM was elucidated using various functional studies.
Results:
Almost all cell types in the BAT-derived SVF of T2DM rats exhibited enhanced inflammatory responses, increased angiogenesis, and disordered glucose and lipid metabolism. The multidirectional differentiation potential of adipose tissue-derived stem cells was also reduced. Moreover, macrophages played a pivotal role in intercellular crosstalk of BAT-derived SVF. A novel Rarres2+macrophage subset promoted the differentiation and metabolic function of brown adipocytes via adipose-immune crosstalk.
Conclusion
BAT SVF exhibited strong heterogeneity in cellular composition and function and contributed to T2DM as a significant inflammation source, in which a novel macrophage subset was identified that can promote brown adipocyte function.