Mitochondrial functions and melatonin: a tour of the reproductive cancers

被引:42
作者
de Almeida Chuffa, Luiz Gustavo [1 ]
Ferreira Seiva, Fabio Rodrigues [2 ]
Cucielo, Maira Smaniotto [1 ]
Silveira, Henrique Spaulonci [1 ]
Reiter, Russel J. [3 ]
Lupi, Luiz Antonio [1 ]
机构
[1] Sao Paulo State Univ, UNESP, Dept Anat, Inst Biosci Botucatu, POB 18618-689, Botucatu, SP, Brazil
[2] Univ Estadual Norte Parana, Dept Biol & Technol, UENP CLM, Bandeirantes, Parana, Brazil
[3] UTHealth, Dept Cellular & Struct Biol, San Antonio, TX 78229 USA
基金
巴西圣保罗研究基金会;
关键词
Melatonin; Mitochondrial function; Ovarian cancer; Breast cancer; Endometrial cancer; Cervical cancer; Prostate cancer; PROSTATE EPITHELIAL-CELLS; IN-VIVO MODEL; BREAST-CANCER; OXIDATIVE STRESS; CERVICAL-CANCER; ANTIPROLIFERATIVE ACTION; INDUCED APOPTOSIS; SIGNAL-TRANSDUCTION; ANDROGEN RECEPTOR; DOWN-REGULATION;
D O I
10.1007/s00018-018-2963-0
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
Cancers of the reproductive organs have a strong association with mitochondrial defects, and a deeper understanding of the role of this organelle in preneoplastic-neoplastic changes is important to determine the appropriate therapeutic intervention. Mitochondria are involved in events during cancer development, including metabolic and oxidative status, acquisition of metastatic potential, resistance to chemotherapy, apoptosis, and others. Because of their origin from melatonin-producing bacteria, mitochondria are speculated to produce melatonin and its derivatives at high levels; in addition, exogenously administered melatonin accumulates in the mitochondria against a concentration gradient. Melatonin is transported into tumor cell by GLUT/SLC2A and/or by the PEPT1/2 transporters, and plays beneficial roles in mitochondrial homeostasis, such as influencing oxidative phosphorylation and electron flux, ATP synthesis, bioenergetics, calcium influx, and mitochondrial permeability transition pore. Moreover, melatonin promotes mitochondrial homeostasis by regulating nuclear DNA and mtDNA transcriptional activities. This review focuses on the main functions of melatonin on mitochondrial processes, and reviews from a mechanistic standpoint, how mitochondrial crosstalk evolved in ovarian, endometrial, cervical, breast, and prostate cancers relative to melatonin's known actions. We put emphasis on signaling pathways whereby melatonin interferes within cancer-cell mitochondria after its administration. Depending on subtype and intratumor metabolic heterogeneity, melatonin seems to be helpful in promoting apoptosis, anti-proliferation, pro-oxidation, metabolic shifting, inhibiting neovasculogenesis and controlling inflammation, and restoration of chemosensitivity. This results in attenuation of development, progression, and metastatic potential of reproductive cancers, in addition to lowering the risk of recurrence and improving the life quality of patients.
引用
收藏
页码:837 / 863
页数:27
相关论文
共 301 条
[81]   Effect of Melatonin Intake on Oxidative Stress Biomarkers in Male Reproductive Organs of Rats under Experimental Diabetes [J].
Gobbo, Marina G. ;
Pereira Costa, Carolina F. ;
Humberto Silva, Danilo G. ;
de Almeida, Eduardo A. ;
Goes, Rejane M. .
OXIDATIVE MEDICINE AND CELLULAR LONGEVITY, 2015, 2015
[82]   Molecular Markers of Angiogenesis and Metastasis in Lines of Oral Carcinoma after Treatment with Melatonin [J].
Goncalves, Naiane do Nascimento ;
Rodrigues, Rodrigo Ventura ;
Jardim-Perassi, Bruna Victorasso ;
Moschetta, Marina Gobbe ;
Lopes, Juliana Ramos ;
Colombo, Jucimara ;
Pires de Campos Zuccari, Debora Aparecida .
ANTI-CANCER AGENTS IN MEDICINAL CHEMISTRY, 2014, 14 (09) :1302-1311
[83]   Adaptation of leukemia cells to hypoxic condition through switching the energy metabolism or avoiding the oxidative stress [J].
Goto, Mineaki ;
Miwa, Hiroshi ;
Suganuma, Kazuto ;
Tsunekawa-Imai, Norikazu ;
Shikami, Masato ;
Mizutani, Motonori ;
Mizuno, Shohei ;
Hanamura, Ichiro ;
Nitta, Masakazu .
BMC CANCER, 2014, 14
[84]   Melatonin and breast cancer: cellular mechanisms, clinical studies and future perspectives [J].
Grant, Stephen G. ;
Melan, Melissa A. ;
Latimer, Jean J. ;
Witt-Enderby, Paula A. .
EXPERT REVIEWS IN MOLECULAR MEDICINE, 2009, 11
[85]   A significant correlation between melatonin deficiency and endometrial cancer [J].
Grin, W ;
Grünberger, W .
GYNECOLOGIC AND OBSTETRIC INVESTIGATION, 1998, 45 (01) :62-65
[86]   The Amerindian mtDNA haplogroup B2 enhances the risk of HPV for cervical cancer: de-regulation of mitochondrial genes may be involved [J].
Guardado-Estrada, Mariano ;
Medina-Martinez, Ingrid ;
Juarez-Torres, Eligia ;
Roman-Bassaure, Edgar ;
Macias, Luis ;
Alfaro, Ana ;
Alcantara-Vazquez, Avissai ;
Alonso, Patricia ;
Gomez, Guillermo ;
Cruz-Talonia, Fernando ;
Serna, Luis ;
Munoz-Cortez, Sergio ;
Borges-Ibanez, Manuel ;
Espinosa, Ana ;
Kofman, Susana ;
Berumen, Jaime .
JOURNAL OF HUMAN GENETICS, 2012, 57 (04) :269-276
[87]   Placing mitochondrial DNA mutations within the progression model of type I endometrial carcinoma [J].
Guerra, Flora ;
Kurelac, Ivana ;
Cormio, Antonella ;
Zuntini, Roberta ;
Amato, Laura Benedetta ;
Ceccarelli, Claudio ;
Santini, Donatella ;
Cormio, Gennaro ;
Fracasso, Flavio ;
Selvaggi, Luigi ;
Resta, Leonardo ;
Attimonelli, Marcella ;
Gadaleta, Maria Nicola ;
Gasparre, Giuseppe .
HUMAN MOLECULAR GENETICS, 2011, 20 (12) :2394-2405
[88]   Mitochondrial calcium transport: mechanisms and functions [J].
Gunter, TE ;
Buntinas, L ;
Sparagna, G ;
Eliseev, R ;
Gunter, K .
CELL CALCIUM, 2000, 28 (5-6) :285-296
[89]   MITOCHONDRIAL CALCIUM-TRANSPORT - PHYSIOLOGICAL AND PATHOLOGICAL RELEVANCE [J].
GUNTER, TE ;
GUNTER, KK ;
SHEU, SS ;
GAVIN, CE .
AMERICAN JOURNAL OF PHYSIOLOGY, 1994, 267 (02) :C313-C339
[90]   Bcl-2 suppresses Ca2+ release through inositol 1,4,5-trisphosphate receptors and inhibits Ca2+ uptake by mitochondria without affecting ER calcium store content [J].
Hanson, C. Jane ;
Bootman, Martin D. ;
Distelhorst, Clark W. ;
Wojcikiewicz, Richard J. H. ;
Roderick, H. Llewelyn .
CELL CALCIUM, 2008, 44 (03) :324-338