TY - JOUR
T1 - Advances in pH Sensing
T2 - From Traditional Approaches to Next-Generation Sensors in Biological Contexts
AU - Hassan Akhtar, Mahmood
AU - Azhar Hayat Nawaz, Muhammad
AU - Abbas, Manzar
AU - Liu, Ning
AU - Han, Wenzhao
AU - Lv, Yan
AU - Yu, Cong
N1 - Publisher Copyright:
© 2024 The Chemical Society of Japan and Wiley-VCH GmbH.
PY - 2024/7
Y1 - 2024/7
N2 - pH has been considered one of the paramount factors in bodily functions because most cellular tasks exclusively rely on precise pH values. In this context, the current techniques for pH sensing provide us with the futuristic insight to further design therapeutic and diagnostic tools. Thus, pH-sensing (electrochemically and optically) is rapidly evolving toward exciting new applications and expanding researchers’ interests in many chemical contexts, especially in biomedical applications. The adaptation of cutting-edge technology is subsequently producing the modest form of these biosensors as wearable devices, which are providing us the opportunity to target the real-time collection of vital parameters, including pH for improved healthcare systems. The motif of this review is to provide insight into trending tech-based systems employed in real-time or in-vivo pH-responsive monitoring. Herein, we briefly go through the pH regulation in the human body to help the beginners and scientific community with quick background knowledge, recent advances in the field, and pH detection in real-time biological applications. In the end, we summarize our review by providing an outlook; challenges that need to be addressed, and prospective integration of various pH in vivo platforms with modern electronics that can open new avenues of cutting-edge techniques for disease diagnostics and prevention.
AB - pH has been considered one of the paramount factors in bodily functions because most cellular tasks exclusively rely on precise pH values. In this context, the current techniques for pH sensing provide us with the futuristic insight to further design therapeutic and diagnostic tools. Thus, pH-sensing (electrochemically and optically) is rapidly evolving toward exciting new applications and expanding researchers’ interests in many chemical contexts, especially in biomedical applications. The adaptation of cutting-edge technology is subsequently producing the modest form of these biosensors as wearable devices, which are providing us the opportunity to target the real-time collection of vital parameters, including pH for improved healthcare systems. The motif of this review is to provide insight into trending tech-based systems employed in real-time or in-vivo pH-responsive monitoring. Herein, we briefly go through the pH regulation in the human body to help the beginners and scientific community with quick background knowledge, recent advances in the field, and pH detection in real-time biological applications. In the end, we summarize our review by providing an outlook; challenges that need to be addressed, and prospective integration of various pH in vivo platforms with modern electronics that can open new avenues of cutting-edge techniques for disease diagnostics and prevention.
KW - fluorophores
KW - microelectrode
KW - pH regulation
KW - pH sensing
KW - wearable sensor
UR - http://www.scopus.com/inward/record.url?scp=85197277617&partnerID=8YFLogxK
U2 - 10.1002/tcr.202300369
DO - 10.1002/tcr.202300369
M3 - Review article
C2 - 38953343
AN - SCOPUS:85197277617
SN - 1527-8999
VL - 24
JO - Chemical Record
JF - Chemical Record
IS - 7
M1 - e202300369
ER -