TMEM16A alternative splicing coordination in breast cancer

被引:38
|
作者
Ubby, Ifeoma [1 ]
Bussani, Erica [1 ]
Colonna, Antonio [2 ]
Stacul, Giuseppe [2 ]
Locatelli, Martina [2 ]
Scudieri, Paolo [3 ]
Galietta, Luis [3 ]
Pagani, Franco [1 ]
机构
[1] Int Ctr Genet Engn & Biotechnol, I-34012 Trieste, Italy
[2] Presidio Osped Gorizia, Gorizia Hosp, Gorizia, Italy
[3] Ist Giannina Gaslini, UOC Genet Med, I-16148 Genoa, Italy
来源
MOLECULAR CANCER | 2013年 / 12卷
关键词
TMEM16A isoforms; Alternative splicing; Splicing coordination; Breast cancer; GASTROINTESTINAL STROMAL TUMORS; ACTIVATED CHLORIDE CHANNEL; CA2+-ACTIVATED CL-CHANNELS; SQUAMOUS-CELL CARCINOMA; INTERSTITIAL-CELLS; SINGLE-GENE; EXPRESSION; GROWTH; DOG1; PROLIFERATION;
D O I
10.1186/1476-4598-12-75
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Background: TMEM16A, also known as Anoctamin-1, is a calcium-activated chloride channel gene overexpressed in many tumors. The role of TMEM16A in cancer is not completely understood and no data are available regarding the potential tumorigenic properties of the multiple isoforms generated by alternative splicing (AS). Methods: We evaluated TMEM16A AS pattern, isoforms distribution and Splicing Coordination (SC), in normal tissues and breast cancers, through a semi-quantitative PCR-assay that amplifies transcripts across three AS exons, 6b, 13 and 15. Results: In breast cancer, we did not observe an association either to AS of individual exons or to specific TMEM16A isoforms, and induced expression of the most common isoforms present in tumors in the HEK293 Flp-In Tet-ON system had no effect on cellular proliferation and migration. The analysis of splicing coordination, a mechanism that regulates AS of distant exons, showed a preferential association of exon 6b and 15 in several normal tissues and tumors: isoforms that predominantly include exon 6b tend to exclude exon 15 and vice versa. Interestingly, we found an increase in SC in breast tumors compared to matched normal tissues. Conclusions: As the different TMEM16A isoforms do not affect proliferation or migration and do not associate with tumors, our results suggest that the resulting channel activities are not directly involved in cell growth and motility. Conversely, the observed increase in SC in breast tumors suggests that the maintenance of the regulatory mechanism that coordinates distant alternative spliced exons in multiple genes other than TMEM16A is necessary for cancer cell viability.
引用
收藏
页数:13
相关论文
共 50 条
  • [21] TMEM16A Induces MAPK and Contributes Directly to Tumorigenesis and Cancer Progression
    Duvvuri, Umamaheswar
    Shiwarski, Daniel J.
    Xiao, Dong
    Bertrand, Carol
    Huang, Xin
    Edinger, Robert S.
    Rock, Jason R.
    Harfe, Brian D.
    Henson, Brian J.
    Kunzelmann, Karl
    Schreiber, Rainer
    Seethala, Raja S.
    Egloff, Ann Marie
    Chen, Xing
    Lui, Vivian W.
    Grandis, Jennifer R.
    Gollin, Susanne M.
    CANCER RESEARCH, 2012, 72 (13) : 3270 - 3281
  • [22] The Function and Mechanism of TMEM16A/ANO1 in Pancreatic Cancer
    Kim, Yonjung
    Park, Hyung Soon
    BIOPHYSICAL JOURNAL, 2017, 112 (03) : 548A - 548A
  • [23] TMEM16A overexpression indicates poor prognosis in colorectal cancer patients
    Liu, Jia-Jia
    He, Fang
    Guo, Shi-Bin
    REVISTA ESPANOLA DE ENFERMEDADES DIGESTIVAS, 2022, 114 (07) : 390 - 394
  • [24] Nuciferine Inhibits TMEM16A in Dietary Adjuvant Therapy for Lung Cancer
    Bai, Xue
    Liu, Xinyi
    Li, Shuting
    An, Hailong
    Kang, Xianjiang
    Guo, Shuai
    JOURNAL OF AGRICULTURAL AND FOOD CHEMISTRY, 2022, 70 (12) : 3687 - 3696
  • [25] TMEM16A in Cystic Fibrosis: Activating or Inhibiting?
    Kunzelmann, Karl
    Ousingsawat, Jiraporn
    Cabrita, Ines
    Dousova, Tereza
    Baehr, Andrea
    Janda, Melanie
    Schreiber, Rainer
    Benedetto, Roberta
    FRONTIERS IN PHARMACOLOGY, 2019, 10
  • [26] Developmental expression of TMEM16A and TMEM16B in the mouse olfactory epithelium
    Maurya, D.
    Menini, A.
    CHEMICAL SENSES, 2014, 39 (01) : 103 - 103
  • [27] TMEM16A Potentiation: Possible Drawbacks Reply
    Danahay, Henry L.
    Morris, David G.
    Gosling, Martin
    AMERICAN JOURNAL OF RESPIRATORY AND CRITICAL CARE MEDICINE, 2020, 202 (06) : 905 - 906
  • [28] The pharmacology of the TMEM16A channel: therapeutic opportunities
    Al-Hosni, Rumaitha
    Ilkan, Zeki
    Agostinelli, Emilio
    Tammaro, Paolo
    TRENDS IN PHARMACOLOGICAL SCIENCES, 2022, 43 (09) : 712 - 725
  • [29] Niclosamide potentiates TMEM16A and induces vasoconstriction
    Liang, Pengfei
    Wan, Yui Chun S.
    Yu, Kuai
    Hartzell, H. Criss
    Yang, Huanghe
    BIOPHYSICAL JOURNAL, 2024, 123 (03) : 444A - 444A
  • [30] Functional Swapping between Transmembrane Proteins TMEM16A and TMEM16F
    Suzuki, Takayuki
    Suzuki, Jun
    Nagata, Shigekazu
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2014, 289 (11) : 7438 - 7447