TY - JOUR
T1 - Evidence for peroxynitrite-mediated modifications to p53 in human gliomas
T2 - Possible functional consequences
AU - Cobbs, Charles S.
AU - Samanta, Minu
AU - Harkins, Lualhati E.
AU - Gillespie, G. Yancey
AU - Merrick, B. Alex
AU - MacMillan-Crow, Lee Ann
N1 - Funding Information:
We thank H. Sontheimer, J. A. Thompson, J. S. Beckman, and H. Dowden for providing valuable resources and input. This work was supported in part by the American Brain Tumor Association Bonnie Blair/Dallas Stars Fellowship, American Cancer Society, and Veter- ans Administration (C.S.C.), and the American Heart Association (L.A.M.C.).
PY - 2001/10/15
Y1 - 2001/10/15
N2 - Based on previous findings of increased nitric oxide synthase (NOS) expression in human gliomas (4), we hypothesized that peroxynitrite, a highly reactive metabolite of nitric oxide (NO) and superoxide (O2.-), might be increased in these tumors in vivo. Here we demonstrate that nitrotyrosine (a footprint of peroxynitrite protein modification) is present in human malignant gliomas. Furthermore, we show that p53, a key tumor suppressor protein, has evidence of peroxynitrite-mediated modifications in gliomas in vivo. Experiments in vitro demonstrate that peroxynitrite treatment of recombinant wild-type p53 at physiological concentrations results in formation of higher molecular weight aggregates, tyrosine nitration, and loss of specific DNA binding. Peroxynitrite treatment of human glioma cell lysates similarly resulted in selective tyrosine nitration of p53 and was also associated with loss of p53 DNA binding ability. These data indicate that tyrosine nitration of proteins occurs in human gliomas in vivo, that p53 may be a target of peroxynitrite in these tumors, and that physiological concentrations of peroxynitrite can result in a loss of p53 DNA binding ability in vitro. These findings raise the possibility that peroxynitrite may contribute to loss of wild-type p53 functional activity in gliomas by posttranslational protein modifications.
AB - Based on previous findings of increased nitric oxide synthase (NOS) expression in human gliomas (4), we hypothesized that peroxynitrite, a highly reactive metabolite of nitric oxide (NO) and superoxide (O2.-), might be increased in these tumors in vivo. Here we demonstrate that nitrotyrosine (a footprint of peroxynitrite protein modification) is present in human malignant gliomas. Furthermore, we show that p53, a key tumor suppressor protein, has evidence of peroxynitrite-mediated modifications in gliomas in vivo. Experiments in vitro demonstrate that peroxynitrite treatment of recombinant wild-type p53 at physiological concentrations results in formation of higher molecular weight aggregates, tyrosine nitration, and loss of specific DNA binding. Peroxynitrite treatment of human glioma cell lysates similarly resulted in selective tyrosine nitration of p53 and was also associated with loss of p53 DNA binding ability. These data indicate that tyrosine nitration of proteins occurs in human gliomas in vivo, that p53 may be a target of peroxynitrite in these tumors, and that physiological concentrations of peroxynitrite can result in a loss of p53 DNA binding ability in vitro. These findings raise the possibility that peroxynitrite may contribute to loss of wild-type p53 functional activity in gliomas by posttranslational protein modifications.
KW - Aggregation
KW - Glioma
KW - Peroxynitrite
KW - Tumor suppressor
KW - Tyrosine nitration
KW - p53
UR - https://www.scopus.com/pages/publications/0035887324
U2 - 10.1006/abbi.2001.2540
DO - 10.1006/abbi.2001.2540
M3 - Article
C2 - 11594730
AN - SCOPUS:0035887324
SN - 0003-9861
VL - 394
SP - 167
EP - 172
JO - Archives of Biochemistry and Biophysics
JF - Archives of Biochemistry and Biophysics
IS - 2
ER -