High‐throughput Production of Liver Parenchymal Microtissues and Enrichment of Organ‐specific Functions in Gelatin Methacrylamide Microenvironment

Author(s):  
Roopesh R. Pai ◽  
Senthilkumar Muthusamy ◽  
Shiny Velayudhan ◽  
A. Sabareeswaran ◽  
Anil Kumar P.R.

2021 ◽  
Vol 12 (1) ◽  
Author(s):  
Woo Seok Kim ◽  
Sungcheol Hong ◽  
Milenka Gamero ◽  
Vivekanand Jeevakumar ◽  
Clay M. Smithhart ◽  
...  

AbstractThe vagus nerve supports diverse autonomic functions and behaviors important for health and survival. To understand how specific components of the vagus contribute to behaviors and long-term physiological effects, it is critical to modulate their activity with anatomical specificity in awake, freely behaving conditions using reliable methods. Here, we introduce an organ-specific scalable, multimodal, wireless optoelectronic device for precise and chronic optogenetic manipulations in vivo. When combined with an advanced, coil-antenna system and a multiplexing strategy for powering 8 individual homecages using a single RF transmitter, the proposed wireless telemetry enables low cost, high-throughput, and precise functional mapping of peripheral neural circuits, including long-term behavioral and physiological measurements. Deployment of these technologies reveals an unexpected role for stomach, non-stretch vagal sensory fibers in suppressing appetite and demonstrates the durability of the miniature wireless device inside harsh gastric conditions.



Lab on a Chip ◽  
2019 ◽  
Vol 19 (9) ◽  
pp. 1556-1566 ◽  
Author(s):  
Kelly Tan ◽  
Philip Keegan ◽  
Miles Rogers ◽  
Mingjian Lu ◽  
James R. Gosset ◽  
...  

Microphysiological systems (MPSs) are dynamic cell culture systems that provide micro-environmental and external cues to support physiologically relevant, organ-specific functions.





2020 ◽  
Author(s):  
Woo Seok Kim ◽  
Sungcheol Hong ◽  
Milenka Gamero ◽  
Vivekanand Jeevakumar ◽  
Clay Smithhart ◽  
...  

Abstract The vagus nerve supports diverse autonomic functions and behaviors important for health and survival. To understand how specific components of the vagus contribute to behaviors and long-term physiological effects, it is critical to modulate their activity with anatomical specificity in awake, freely behaving conditions using reliable methods. Here, we introduce an organ-specific scalable, multimodal, wireless optoelectronic device for precise and chronic optogenetic manipulations in vivo. When combined with an advanced, coil-antenna system and a multiplexing strategy for powering 8 individual homecages using a single RF transmitter, the proposed wireless telemetry enables low cost, high-throughput, and precise functional mapping of peripheral neural circuits, including long-term behavioral and physiological measurements. Deployment of these technologies revealed an unexpected role for stomach, non-stretch vagal sensory fibers in suppressing appetite and demonstrated the durability of the miniature wireless device inside harsh gastric conditions.



2007 ◽  
Vol 177 (4S) ◽  
pp. 52-53
Author(s):  
Stefano Ongarello ◽  
Eberhard Steiner ◽  
Regina Achleitner ◽  
Isabel Feuerstein ◽  
Birgit Stenzel ◽  
...  


2004 ◽  
Vol 171 (4S) ◽  
pp. 350-350
Author(s):  
Young Ah Goo ◽  
Eugene Yi ◽  
Carrie M. Sorensen ◽  
Leroy E. Hood ◽  
Alvin Y. Liu


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