TY - JOUR
T1 - Fluorescence imaging of lysosomal hydrogen selenide under oxygen-controlled conditions
AU - Tian, Yong
AU - Xin, Fangyun
AU - Jing, Jing
AU - Zhang, Xiaoling
N1 - Publisher Copyright:
© The Royal Society of Chemistry.
PY - 2019
Y1 - 2019
N2 - Hydrogen selenide (H2Se), a central metabolite of Se supplements, displays critical biological functions in many physiological and pathological processes. To better understand its comprehensive function, especially those exerted in subcellular organelles, the development of specific assays is urgently needed. However, the methodology to detect H2Se is poorly developed. Here, we present a concise design strategy to obtain an activatable fluorescent probe (Se-1) for H2Se by utilizing an intramolecular photoinduced electron transfer (PET) process to switch the fluorescence. The probe is able to selectively react with H2Se without interference from intracellular reactive species, and has been successfully used to image the H2Se content in lysosomes. Additionally, with the aid of Se-1, we demonstrated that lysosomal H2Se can be generated and can gradually accumulate in HepG2 cells under hypoxic conditions. These applications make Se-1 a potential new candidate for deciphering the biological effects of H2Se on lysosomes in biology and pathology.
AB - Hydrogen selenide (H2Se), a central metabolite of Se supplements, displays critical biological functions in many physiological and pathological processes. To better understand its comprehensive function, especially those exerted in subcellular organelles, the development of specific assays is urgently needed. However, the methodology to detect H2Se is poorly developed. Here, we present a concise design strategy to obtain an activatable fluorescent probe (Se-1) for H2Se by utilizing an intramolecular photoinduced electron transfer (PET) process to switch the fluorescence. The probe is able to selectively react with H2Se without interference from intracellular reactive species, and has been successfully used to image the H2Se content in lysosomes. Additionally, with the aid of Se-1, we demonstrated that lysosomal H2Se can be generated and can gradually accumulate in HepG2 cells under hypoxic conditions. These applications make Se-1 a potential new candidate for deciphering the biological effects of H2Se on lysosomes in biology and pathology.
UR - http://www.scopus.com/inward/record.url?scp=85064966475&partnerID=8YFLogxK
U2 - 10.1039/c8tb03169j
DO - 10.1039/c8tb03169j
M3 - Article
C2 - 32255085
AN - SCOPUS:85064966475
SN - 2050-7518
VL - 7
SP - 2829
EP - 2834
JO - Journal of Materials Chemistry B
JF - Journal of Materials Chemistry B
IS - 17
ER -