Literature DB >> 21424129

Induction of arginosuccinate synthetase (ASS) expression affects the antiproliferative activity of arginine deiminase (ADI) in melanoma cells.

Antonella Manca1, Maria Cristina Sini, Francesco Izzo, Paolo A Ascierto, Fabiana Tatangelo, Gerardo Botti, Giusy Gentilcore, Marilena Capone, Nicola Mozzillo, Carla Rozzo, Antonio Cossu, Francesco Tanda, Giuseppe Palmieri.   

Abstract

Arginine deiminase (ADI), an arginine-degrading enzyme, has been used in the treatment of tumours sensitive to arginine deprivation, such as malignant melanoma (MM) and hepatocellular carcinoma (HCC). Endogenous production of arginine is mainly dependent on activity of ornithine transcarbamylase (OTC) and argininosuccinate synthetase (ASS) enzymes. We evaluated the effect of ADI treatment on OTC and ASS expression in a series of melanoma cell lines. Twenty-five primary melanoma cell lines and normal fibroblasts as controls underwent cell proliferation assays and Western blot analyses in the presence or absence of ADI. Tissue sections from primary MMs (N = 20) and HCCs (N = 20) were investigated by immunohistochemistry for ASS expression. Overall, 21/25 (84%) MM cell lines presented a cell growth inhibition by ADI treatment; none of them presented constitutive detectable levels of the ASS protein. However, 7/21 (33%) ADI-sensitive melanoma cell lines presented markedly increased expression levels of the ASS protein following ADI treatment, with a significantly higher IC50 median value. Growth was not inhibited and the IC50 was not reached among the remaining 4/25 (16%) MM cell lines; all of them showed constitutive ASS expression. The OTC protein was found expressed in all melanoma cell lines before and after the ADI treatment. Lack of ASS immunostaining was observed in all analyzed in vivo specimens. Our findings suggest that response to ADI treatment in melanoma is significantly correlated with the ability of cells to express ASS either constitutively at basal level (inducing drug resistance) or after the treatment (reducing sensitivity to ADI).

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Year:  2011        PMID: 21424129     DOI: 10.3892/or.2011.1220

Source DB:  PubMed          Journal:  Oncol Rep        ISSN: 1021-335X            Impact factor:   3.906


  13 in total

Review 1.  Arginine dependence of tumor cells: targeting a chink in cancer's armor.

Authors:  M D Patil; J Bhaumik; S Babykutty; U C Banerjee; D Fukumura
Journal:  Oncogene       Date:  2016-04-25       Impact factor: 9.867

Review 2.  Metabolic strategies of melanoma cells: Mechanisms, interactions with the tumor microenvironment, and therapeutic implications.

Authors:  Grant M Fischer; Y N Vashisht Gopal; Jennifer L McQuade; Weiyi Peng; Ralph J DeBerardinis; Michael A Davies
Journal:  Pigment Cell Melanoma Res       Date:  2017-11-02       Impact factor: 4.693

Review 3.  Glutamine-fueled mitochondrial metabolism is decoupled from glycolysis in melanoma.

Authors:  Fabian V Filipp; Boris Ratnikov; Jessica De Ingeniis; Jeffrey W Smith; Andrei L Osterman; David A Scott
Journal:  Pigment Cell Melanoma Res       Date:  2012-10-01       Impact factor: 4.693

4.  [HuArgI (co)-PEG5000]-induced arginine deprivation leads to autophagy dependent cell death in pancreatic cancer cells.

Authors:  Nathalie Khalil; Ralph J Abi-Habib
Journal:  Invest New Drugs       Date:  2019-12-10       Impact factor: 3.850

5.  Targeting argininosuccinate synthetase negative melanomas using combination of arginine degrading enzyme and cisplatin.

Authors:  Niramol Savaraj; Chunjing Wu; Ying-Ying Li; Medhi Wangpaichitr; Min You; John Bomalaski; Wei He; Macus Tien Kuo; Lynn G Feun
Journal:  Oncotarget       Date:  2015-03-20

6.  Argininosuccinate synthetase 1 suppression and arginine restriction inhibit cell migration in gastric cancer cell lines.

Authors:  Yan-Shen Shan; Hui-Ping Hsu; Ming-Derg Lai; Meng-Chi Yen; Wei-Ching Chen; Jung-Hua Fang; Tzu-Yang Weng; Yi-Ling Chen
Journal:  Sci Rep       Date:  2015-04-30       Impact factor: 4.379

7.  Activating PIK3CA mutations coexist with BRAF or NRAS mutations in a limited fraction of melanomas.

Authors:  Antonella Manca; Amelia Lissia; Mariaelena Capone; Paolo A Ascierto; Gerardo Botti; Corrado Caracò; Ignazio Stanganelli; Maria Colombino; MariaCristina Sini; Antonio Cossu; Giuseppe Palmieri
Journal:  J Transl Med       Date:  2015-01-28       Impact factor: 5.531

8.  Co-application of canavanine and irradiation uncouples anticancer potential of arginine deprivation from citrulline availability.

Authors:  Yuliya Kurlishchuk; Bozhena Vynnytska-Myronovska; Philipp Grosse-Gehling; Yaroslav Bobak; Friederike Manig; Oleg Chen; Sebastian R Merker; Thomas Henle; Steffen Löck; Daniel E Stange; Oleh Stasyk; Leoni A Kunz-Schughart
Journal:  Oncotarget       Date:  2016-11-08

9.  Sensitivity of Colorectal Cancer to Arginine Deprivation Therapy is Shaped by Differential Expression of Urea Cycle Enzymes.

Authors:  Constantinos Alexandrou; Saif Sattar Al-Aqbi; Jennifer A Higgins; William Boyle; Ankur Karmokar; Catherine Andreadi; Jin-Li Luo; David A Moore; Maria Viskaduraki; Matthew Blades; Graeme I Murray; Lynne M Howells; Anne Thomas; Karen Brown; Paul N Cheng; Alessandro Rufini
Journal:  Sci Rep       Date:  2018-08-14       Impact factor: 4.379

10.  Histone deacetylase inhibition is synthetically lethal with arginine deprivation in pancreatic cancers with low argininosuccinate synthetase 1 expression.

Authors:  Stephanie S Kim; Shili Xu; Jing Cui; Soumya Poddar; Thuc M Le; Hovhannes Hayrapetyan; Luyi Li; Nanping Wu; Alexandra M Moore; Lei Zhou; Alice C Yu; Amanda M Dann; Irmina A Elliott; Evan R Abt; Woosuk Kim; David W Dawson; Caius G Radu; Timothy R Donahue
Journal:  Theranostics       Date:  2020-01-01       Impact factor: 11.556

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