Effects of GH/IGF on the Aging Mitochondria
Abstract
:1. Overview of the growth hormone (GH)/insulin-like growth factor (IGF ) Axis
2. GH/IGF-1 Effects on Mitochondrial Biogenesis
3. GH/ IGF-1 Effects on Mitochondrial Respiration and ATP Production During Aging
4. GH/IGF-1 Effects on Oxidative Stress During Aging
5. GH/IGF-1 Effects on Cellular Senescence
6. GH/IGF-1 Effects on Mitochondria-Mediated Apoptosis During Aging
7. GH/IGF-1 Effects on Mitochondrial Function During Inflammation
8. Summary
Funding
Conflicts of Interest
Abbreviations
iLID | Adult-induced liver IGF-1 deficiency |
ALS | Acid labile subunit |
ATP | Adenosine triphosphate |
ASK1 | Apoptosis signal regulating kinase 1 |
Bcl-2 | B-cell lymphoma 2 |
β-gal | β-galactosidase |
bGH | Bovine growth hormone |
BNIP3 and BNIP3L | BCL2/adenovirus E1B 19 kDa protein-interacting protein 3 and L |
BAT | Brown adipose tissue |
CS | Cockayne syndrome protein |
Cyt c | Cytochrome c |
DAMPs | Damage-associated molecular patterns |
DDR | DNA damage response |
ETC | Electron transport chain |
FOXO | Forkhead box transcription factors of the class O |
GH | Growth hormone |
GHR | Growth hormone receptor |
GHRKO | GH receptor null |
GHRH | GH-releasing hormone |
GHRHR | GH-releasing hormone receptor |
G6PDH | Glucose-6-phosphate dehydrogenase |
GST | Glutathione S-transferase |
GSH | Glutathione |
GA | Glycated albumin |
HO | Heme oxygenase |
HIT | Hepatic IGF-1 transgene |
hGH | Human GH |
H2O2 | Hydrogen peroxide |
hypx | Hypophysectomized |
IGF-1 | Insulin-like growth factor-1 |
IGFBPs | IGF-binding proteins |
IGF-1R | Insulin-like growth factor-1 receptor |
IIS | Insulin and IGF-1 signaling pathway |
IL | Interleukin |
JAK2 | Janus kinase 2 |
LS | Laron syndrome |
MET | Methionine |
mtDNA | Mitochondrial genome |
MuRF-1 | Muscle RING finger-1 |
ND1 through ND6 | NADH dehydrogenase of complex I |
TNF | Necrosis factor |
NRG | Neuregulin |
NO | Nitric oxide |
NRF1 and 2 | Nuclear respiratory factors |
OXPHOS | Oxidative phosphorylation |
PTP | Permeability transition pore |
PGC1α | Peroxisome proliferator-activated receptor gamma coactivator 1 α |
PPARs | Peroxisome proliferator-activated receptors |
PRC | PGC-1α-related coactivator |
PI3K/AKT | Phosphoinositide-3-kinase (PI3K)/Protein kinase B (PKB, or Akt) |
MAPK | Rat sarcoma GTPase protein (Ras)/Rapidly accelerated fibrosarcoma protein kinase (Raf)/Mitogen-activated protein kinase |
ROS | Reactive oxygen species |
RQ | Respiratory quotient |
rHDL | Reconstituted high-density lipoprotein |
SST | Somatostatin |
SSTR | SST-receptors |
Shc | Src homology 2 domain containing transforming protein |
STAT5b | Signal transducer and activator of transcription 5B |
SERCA2a | Sarco/endoplasmic reticulum Ca2+-ATPase-2a |
SASP | Senescence-associated secretory phenotype |
TF | Transcription factors |
TXNIP | Thioredoxin-interacting protein |
TRX | Thioredoxin |
T3 | Triiodothyronine |
TOMs | Transporters located at the outer mitochondrial membrane |
TCA | Tricarboxylic acid |
TNFa | Tumor necrosis factor-alpha |
VSMCs | Vascular smooth muscle cells |
References
- Niu, T.; Rosen, C.J. The insulin-like growth factor-I gene and osteoporosis: A critical appraisal. Gene 2005, 361, 38–56. [Google Scholar] [CrossRef] [PubMed]
- Barclay, R.D.; Burd, N.A.; Tyler, C.; Tillin, N.A.; Mackenzie, R.W. The Role of the IGF-1 Signaling Cascade in Muscle Protein Synthesis and Anabolic Resistance in Aging Skeletal Muscle. Front. Nutr. 2019, 6, 146. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Harada, K.; Hanayama, Y.; Obika, M.; Itoshima, K.; Okada, K.; Otsuka, F. Clinical relevance of insulin-like growth factor-1 to cardiovascular risk markers. Aging Male 2019, 1–9. [Google Scholar] [CrossRef] [PubMed]
- Graham, M.R.; Evans, P.; Thomas, N.E.; Davies, B.; Baker, J.S. Changes in endothelial dysfunction and associated cardiovascular disease morbidity markers in GH-IGF axis pathology. Am. J. Cardiovasc. Drugs 2009, 9, 371–381. [Google Scholar] [CrossRef] [PubMed]
- Milman, S.; Huffman, D.M.; Barzilai, N. The Somatotropic Axis in Human Aging: Framework for the Current State of Knowledge and Future Research. Cell Metab. 2016, 23, 980–989. [Google Scholar] [CrossRef] [Green Version]
- Haywood, N.J.; Slater, T.A.; Matthews, C.J.; Wheatcroft, S.B. The insulin like growth factor and binding protein family: Novel therapeutic targets in obesity & diabetes. Mol. Metab. 2019, 19, 86–96. [Google Scholar]
- Domene, H.M.; Hwa, V.; Jasper, H.G.; Rosenfeld, R.G. Acid-labile subunit (ALS) deficiency. Best Pract. Res. Clin. Endocrinol. Metab. 2011, 25, 101–113. [Google Scholar] [CrossRef]
- Banaszak-Ziemska, M.; Niedziela, M. PAPP-A2 a new key regulator of growth. Endokrynol. Pol. 2017, 68, 682–691. [Google Scholar] [CrossRef] [Green Version]
- Broglio, F.; Arvat, E.; Benso, A.; Papotti, M.; Muccioli, G.; Deghenghi, R.; Ghigo, E. Ghrelin: Endocrine and non-endocrine actions. J. Pediatr. Endocrinol. Metab. 2002, 15, 1219–1227. [Google Scholar] [CrossRef]
- Arvat, E.; Broglio, F.; Aimaretti, G.; Benso, A.; Giordano, R.; Deghenghi, R.; Ghigo, E. Ghrelin and synthetic GH secretagogues. Best Pract. Res. Clin. Endocrinol. Metab. 2002, 16, 505–517. [Google Scholar] [CrossRef]
- Hakuno, F.; Takahashi, S.I. IGF1 receptor signaling pathways. J. Mol. Endocrinol. 2018, 61, T69–T86. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Riis, S.; Murray, J.B.; O’Connor, R. IGF-1 Signalling Regulates Mitochondria Dynamics and Turnover through a Conserved GSK-3beta-Nrf2-BNIP3 Pathway. Cells 2020, 9, 147. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Lyons, A.; Coleman, M.; Riis, S.; Favre, C.; O’Flanagan, C.H.; Zhdanov, A.V.; Papkovsky, D.B.; Hursting, S.D.; O’Connor, R. Insulin-like growth factor 1 signaling is essential for mitochondrial biogenesis and mitophagy in cancer cells. J. Biol. Chem. 2017, 292, 16983–16998. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Kurmasheva, R.T.; Houghton, P.J. IGF-I mediated survival pathways in normal and malignant cells. Biochim. Biophys. Acta 2006, 1766, 1–22. [Google Scholar] [CrossRef]
- Craigen, W.J. Mitochondrial DNA mutations: an overview of clinical and molecular aspects. Methods Mol. Biol. 2012, 837, 3–15. [Google Scholar] [PubMed]
- Murphy, M.P.; Hartley, R.C. Mitochondria as a therapeutic target for common pathologies. Nat. Rev. Drug Discov. 2018, 17, 865–886. [Google Scholar] [CrossRef] [Green Version]
- El-Hattab, A.W.; Suleiman, J.; Almannai, M.; Scaglia, F. Mitochondrial dynamics: Biological roles, molecular machinery, and related diseases. Mol. Genet. Metab. 2018, 125, 315–321. [Google Scholar] [CrossRef]
- Phu, L.; Rose, C.M.; Tea, J.S.; Wall, C.E.; Verschueren, E.; Cheung, T.K.; Kirkpatrick, D.S.; Bingol, B. Dynamic Regulation of Mitochondrial Import by the Ubiquitin System. Mol. Cell 2020, 77, e1107–e1123. [Google Scholar] [CrossRef]
- Groves, W.E.; Houts, G.E.; Bayse, G.S. Subcellular distribution of 125 I-labeled bovine growth hormone in rat liver and kidney. Biochim. Biophys. Acta 1972, 264, 472–480. [Google Scholar] [CrossRef]
- Mutvei, A.; Husman, B.; Andersson, G.; Nelson, B.D. Thyroid hormone and not growth hormone is the principle regulator of mammalian mitochondrial biogenesis. Acta Endocrinol. (Copenh) 1989, 121, 223–228. [Google Scholar] [CrossRef]
- Maddaiah, V.T.; Sharma, R.K.; Balachandar, V.; Rezvani, I.; Collipp, P.J.; Chen, S.Y. Effect of growth hormone on mitochondrial protein synthesis. J. Biol. Chem. 1973, 248, 4263–4268. [Google Scholar] [PubMed]
- Echave, P.; Machado-da-Silva, G.; Arkell, R.S.; Duchen, M.R.; Jacobson, J.; Mitter, R.; Lloyd, A.C. Extracellular growth factors and mitogens cooperate to drive mitochondrial biogenesis. J. Cell Sci. 2009, 122, 4516–4525. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Brioche, T.; Kireev, R.A.; Cuesta, S.; Gratas-Delamarche, A.; Tresguerres, J.A.; Gomez-Cabrera, M.C.; Vina, J. Growth hormone replacement therapy prevents sarcopenia by a dual mechanism: Improvement of protein balance and of antioxidant defenses. J. Gerontol. A Biol. Sci. Med. Sci. 2014, 69, 1186–1198. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Hou, H.Y.; Wang, X.; Yu, Q.; Li, H.Y.; Li, S.J.; Tang, R.Y.; Guo, Z.X.; Chen, Y.Q.; Hu, C.X.; Yang, Z.J.; et al. Evidence that growth hormone can improve mitochondrial function in oocytes from aged mice. Reproduction 2018, 157, 345–358. [Google Scholar] [CrossRef] [PubMed]
- Holzenberger, M.; Dupont, J.; Ducos, B.; Leneuve, P.; Geloen, A.; Even, P.C.; Cervera, P.; Le Bouc, Y. IGF-1 receptor regulates lifespan and resistance to oxidative stress in mice. Nature 2003, 421, 182–187. [Google Scholar] [CrossRef] [PubMed]
- Tatar, M.; Kopelman, A.; Epstein, D.; Tu, M.P.; Yin, C.M.; Garofalo, R.S. A mutant Drosophila insulin receptor homolog that extends life-span and impairs neuroendocrine function. Science 2001, 292, 107–110. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Kimura, K.D.; Tissenbaum, H.A.; Liu, Y.; Ruvkun, G. daf-2, an insulin receptor-like gene that regulates longevity and diapause in Caenorhabditis elegans. Science 1997, 277, 942–946. [Google Scholar] [CrossRef]
- Kenyon, C.; Chang, J.; Gensch, E.; Rudner, A.; Tabtiang, R. A C. elegans mutant that lives twice as long as wild type. Nature 1993, 366, 461–464. [Google Scholar] [CrossRef]
- Brown-Borg, H.M.; Johnson, W.T.; Rakoczy, S.G. Expression of oxidative phosphorylation components in mitochondria of long-living Ames dwarf mice. Age (Dordr) 2012, 34, 43–57. [Google Scholar] [CrossRef] [Green Version]
- Westbrook, R.; Bonkowski, M.S.; Strader, A.D.; Bartke, A. Alterations in oxygen consumption, respiratory quotient, and heat production in long-lived GHRKO and Ames dwarf mice, and short-lived bGH transgenic mice. J. Gerontol. A Biol. Sci. Med. Sci. 2009, 64, 443–451. [Google Scholar] [CrossRef] [Green Version]
- Brown-Borg, H.; Johnson, W.T.; Rakoczy, S.; Romanick, M. Mitochondrial oxidant generation and oxidative damage in Ames dwarf and GH transgenic mice. J. Am. Aging Assoc. 2001, 24, 85–96. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Fang, Y.; McFadden, S.; Darcy, J.; Hascup, E.R.; Hascup, K.N.; Bartke, A. Lifespan of long-lived growth hormone receptor knockout mice was not normalized by housing at 30 degrees C since weaning. Aging Cell 2020, e13123. [Google Scholar] [CrossRef]
- Darcy, J.; McFadden, S.; Fang, Y.; Berryman, D.E.; List, E.O.; Milcik, N.; Bartke, A. Increased environmental temperature normalizes energy metabolism outputs between normal and Ames dwarf mice. Aging (Albany NY) 2018, 10, 2709–2722. [Google Scholar] [CrossRef] [PubMed]
- Garcia-Fernandez, M.; Delgado, G.; Puche, J.E.; Gonzalez-Baron, S.; Castilla Cortazar, I. Low doses of insulin-like growth factor I improve insulin resistance, lipid metabolism, and oxidative damage in aging rats. Endocrinology 2008, 149, 2433–2442. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Zadik, Z.; Chalew, S.A.; McCarter, R.J.Jr.; Meistas, M.; Kowarski, A.A. The influence of age on the 24-hour integrated concentration of growth hormone in normal individuals. J. Clin. Endocrinol. Metab. 1985, 60, 513–516. [Google Scholar] [CrossRef]
- Colon, G.; Saccon, T.; Schneider, A.; Cavalcante, M.B.; Huffman, D.M.; Berryman, D.; List, E.; Ikeno, Y.; Musi, N.; Bartke, A.; et al. The enigmatic role of growth hormone in age-related diseases, cognition, and longevity. Geroscience 2019, 41, 759–774. [Google Scholar] [CrossRef]
- Olleros Santos-Ruiz, M.; Sadaba, M.C.; Martin-Estal, I.; Munoz, U.; Sebal Neira, C.; Castilla-Cortazar, I. The single IGF-1 partial deficiency is responsible for mitochondrial dysfunction and is restored by IGF-1 replacement therapy. Growth Horm. IGF Res. 2017, 35, 21–32. [Google Scholar] [CrossRef]
- Puche, J.E.; Garcia-Fernandez, M.; Muntane, J.; Rioja, J.; Gonzalez-Baron, S.; Castilla Cortazar, I. Low doses of insulin-like growth factor-I induce mitochondrial protection in aging rats. Endocrinology 2008, 149, 2620–2627. [Google Scholar] [CrossRef] [Green Version]
- Pharaoh, G.; Owen, D.; Yeganeh, A.; Premkumar, P.; Farley, J.; Bhaskaran, S.; Ashpole, N.; Kinter, M.; Van Remmen, H.; Logan, S. Disparate Central and Peripheral Effects of Circulating IGF-1 Deficiency on Tissue Mitochondrial Function. Mol. Neurobiol. 2020, 57, 1317–1331. [Google Scholar] [CrossRef] [Green Version]
- Logan, S.; Pharaoh, G.A.; Marlin, M.C.; Masser, D.R.; Matsuzaki, S.; Wronowski, B.; Yeganeh, A.; Parks, E.E.; Premkumar, P.; Farley, J.A.; et al. Insulin-like growth factor receptor signaling regulates working memory, mitochondrial metabolism, and amyloid-beta uptake in astrocytes. Mol. Metab. 2018, 9, 141–155. [Google Scholar] [CrossRef]
- Vays, V.B.; Eldarov, C.M.; Vangely, I.M.; Kolosova, N.G.; Bakeeva, L.E.; Skulachev, V.P. Antioxidant SkQ1 delays sarcopenia-associated damage of mitochondrial ultrastructure. Aging (Albany NY) 2014, 6, 140–148. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Zhang, Y.; Yuan, M.; Bradley, K.M.; Dong, F.; Anversa, P.; Ren, J. Insulin-like growth factor 1 alleviates high-fat diet-induced myocardial contractile dysfunction: Role of insulin signaling and mitochondrial function. Hypertension 2012, 59, 680–693. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Liu, Z.; Solesio, M.E.; Schaffler, M.B.; Frikha-Benayed, D.; Rosen, C.J.; Werner, H.; Kopchick, J.J.; Pavlov, E.V.; Abramov, A.Y.; Yakar, S. Mitochondrial Function Is Compromised in Cortical Bone Osteocytes of Long-Lived Growth Hormone Receptor Null Mice. J. Bone Miner. Res. 2019, 34, 106–122. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Sohal, R.S.; Orr, W.C. The redox stress hypothesis of aging. Free Radic. Biol. Med. 2012, 52, 539–555. [Google Scholar] [CrossRef] [Green Version]
- Finkel, T.; Holbrook, N.J. Oxidants, oxidative stress and the biology of ageing. Nature 2000, 408, 239–247. [Google Scholar] [CrossRef]
- Cadenas, E.; Davies, K.J. Mitochondrial free radical generation, oxidative stress, and aging. Free Radic. Biol. Med. 2000, 29, 222–230. [Google Scholar] [CrossRef]
- Harman, D. The biologic clock: the mitochondria? J. Am. Geriatr. Soc. 1972, 20, 145–147. [Google Scholar] [CrossRef]
- Winterbourn, C.C. Toxicity of iron and hydrogen peroxide: The Fenton reaction. Toxicol. Lett. 1995, 82–83, 969–974. [Google Scholar] [CrossRef]
- Fridovich, I. Biological effects of the superoxide radical. Arch. Biochem. Biophys. 1986, 247, 1–11. [Google Scholar] [CrossRef]
- Elis, S.; Wu, Y.; Courtland, H.W.; Sun, H.; Rosen, C.J.; Adamo, M.L.; Yakar, S. Increased serum IGF-1 levels protect the musculoskeletal system but are associated with elevated oxidative stress markers and increased mortality independent of tissue igf1 gene expression. Aging Cell 2011, 10, 547–550. [Google Scholar] [CrossRef] [Green Version]
- Hauck, S.J.; Bartke, A. Effects of growth hormone on hypothalamic catalase and Cu/Zn superoxide dismutase. Free Radic. Biol. Med. 2000, 28, 970–978. [Google Scholar] [CrossRef]
- Yamamoto, M.; Clark, J.D.; Pastor, J.V.; Gurnani, P.; Nandi, A.; Kurosu, H.; Miyoshi, M.; Ogawa, Y.; Castrillon, D.H.; Rosenblatt, K.P.; et al. Regulation of oxidative stress by the anti-aging hormone klotho. J. Biol. Chem. 2005, 280, 38029–38034. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Choksi, K.B.; Roberts, L.J., 2nd; DeFord, J.H.; Rabek, J.P.; Papaconstantinou, J. Lower levels of F2-isoprostanes in serum and livers of long-lived Ames dwarf mice. Biochem. Biophys. Res. Commun. 2007, 364, 761–764. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Salmon, A.B.; Murakami, S.; Bartke, A.; Kopchick, J.; Yasumura, K.; Miller, R.A. Fibroblast cell lines from young adult mice of long-lived mutant strains are resistant to multiple forms of stress. Am. J. Physiol. Endocrinol. Metab. 2005, 289, E23–E29. [Google Scholar] [CrossRef] [Green Version]
- Bartke, A.; Brown-Borg, H. Life extension in the dwarf mouse. Curr. Top. Dev. Biol. 2004, 63, 189–225. [Google Scholar]
- Rojanathammanee, L.; Rakoczy, S.; Brown-Borg, H.M. Growth hormone alters the glutathione S-transferase and mitochondrial thioredoxin systems in long-living Ames dwarf mice. J. Gerontol. A Biol. Sci. Med. Sci. 2014, 69, 1199–1211. [Google Scholar] [CrossRef] [Green Version]
- Brown-Borg, H.M.; Bode, A.M.; Bartke, A. Antioxidative mechanisms and plasma growth hormone levels: Potential relationship in the aging process. Endocrine 1999, 11, 41–48. [Google Scholar] [CrossRef]
- Brown-Borg, H.M.; Rakoczy, S.G.; Sharma, S.; Bartke, A. Long-living growth hormone receptor knockout mice: Potential mechanisms of altered stress resistance. Exp. Gerontol. 2009, 44, 10–19. [Google Scholar] [CrossRef] [Green Version]
- Hauck, S.J.; Aaron, J.M.; Wright, C.; Kopchick, J.J.; Bartke, A. Antioxidant enzymes, free-radical damage, and response to paraquat in liver and kidney of long-living growth hormone receptor/binding protein gene-disrupted mice. Horm. Metab. Res. 2002, 34, 481–486. [Google Scholar] [CrossRef]
- Laron, Z. Laron syndrome (primary growth hormone resistance or insensitivity): The personal experience 1958–2003. J. Clin. Endocrinol. Metab. 2004, 89, 1031–1044. [Google Scholar] [CrossRef] [Green Version]
- Amselem, S.; Duquesnoy, P.; Attree, O.; Novelli, G.; Bousnina, S.; Postel-Vinay, M.C.; Goossens, M. Laron dwarfism and mutations of the growth hormone-receptor gene. N. Engl. J. Med. 1989, 321, 989–995. [Google Scholar] [CrossRef] [PubMed]
- Godowski, P.J.; Leung, D.W.; Meacham, L.R.; Galgani, J.P.; Hellmiss, R.; Keret, R.; Rotwein, P.S.; Parks, J.S.; Laron, Z.; Wood, W.I. Characterization of the human growth hormone receptor gene and demonstration of a partial gene deletion in two patients with Laron-type dwarfism. Proc. Natl. Acad. Sci. USA 1989, 86, 8083–8087. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Laron, Z.; Pertzelan, A.; Mannheimer, S. Genetic pituitary dwarfism with high serum concentation of growth hormone—a new inborn error of metabolism? Isr. J. Med. Sci. 1966, 2, 152–155. [Google Scholar] [PubMed]
- Laron, Z.; Pertzelan, A.; Karp, M.; Kowadlo-Silbergeld, A.; Daughaday, W.H. Administration of growth hormone to patients with familial dwarfism with high plasma immunoreactive growth hormone: measurement of sulfation factor, metabolic and linear growth responses. J. Clin. Endocrinol. Metab. 1971, 33, 332–342. [Google Scholar] [CrossRef] [PubMed]
- Shalev, A. Minireview: Thioredoxin-interacting protein: regulation and function in the pancreatic beta-cell. Mol. Endocrinol. 2014, 28, 1211–1220. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Saxena, G.; Chen, J.; Shalev, A. Intracellular shuttling and mitochondrial function of thioredoxin-interacting protein. J. Biol. Chem. 2010, 285, 3997–4005. [Google Scholar] [CrossRef] [Green Version]
- Baldan, F.; Mio, C.; Lavarone, E.; Di Loreto, C.; Puglisi, F.; Damante, G.; Puppin, C. Epigenetic bivalent marking is permissive to the synergy of HDAC and PARP inhibitors on TXNIP expression in breast cancer cells. Oncol. Rep. 2015, 33, 2199–2206. [Google Scholar] [CrossRef] [Green Version]
- Yoshihara, E.; Masaki, S.; Matsuo, Y.; Chen, Z.; Tian, H.; Yodoi, J. Thioredoxin/Txnip: Redoxisome, as a redox switch for the pathogenesis of diseases. Front. Immunol. 2014, 4, 514. [Google Scholar] [CrossRef] [Green Version]
- Zhou, J.; Chng, W.J. Roles of thioredoxin binding protein (TXNIP) in oxidative stress, apoptosis and cancer. Mitochondrion 2013, 13, 163–169. [Google Scholar] [CrossRef]
- Minn, A.H.; Pise-Masison, C.A.; Radonovich, M.; Brady, J.N.; Wang, P.; Kendziorski, C.; Shalev, A. Gene expression profiling in INS-1 cells overexpressing thioredoxin-interacting protein. Biochem. Biophys. Res. Commun. 2005, 336, 770–778. [Google Scholar] [CrossRef]
- Han, S.H.; Jeon, J.H.; Ju, H.R.; Jung, U.; Kim, K.Y.; Yoo, H.S.; Lee, Y.H.; Song, K.S.; Hwang, H.M.; Na, Y.S. VDUP1 upregulated by TGF-beta1 and 1,25-dihydorxyvitamin D3 inhibits tumor cell growth by blocking cell-cycle progression. Oncogene 2003, 22, 4035–4046. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Wang, Z.; Prins, G.S.; Coschigano, K.T.; Kopchick, J.J.; Green, J.E.; Ray, V.H.; Hedayat, S.; Christov, K.T.; Unterman, T.G.; Swanson, S.M. Disruption of growth hormone signaling retards early stages of prostate carcinogenesis in the C3(1)/T antigen mouse. Endocrinology 2005, 146, 5188–5196. [Google Scholar] [CrossRef] [PubMed]
- Lapkina-Gendler, L.; Rotem, I.; Pasmanik-Chor, M.; Gurwitz, D.; Sarfstein, R.; Laron, Z.; Werner, H. Identification of signaling pathways associated with cancer protection in Laron syndrome. Endocr. Relat. Cancer 2016, 23, 399–410. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Patwari, P.; Higgins, L.J.; Chutkow, W.A.; Yoshioka, J.; Lee, R.T. The interaction of thioredoxin with Txnip. Evidence for formation of a mixed disulfide by disulfide exchange. J. Biol. Chem. 2006, 281, 21884–21891. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Hong, S.Y.; Hagen, T. 2-Deoxyglucose induces the expression of thioredoxin interacting protein (TXNIP) by increasing O-GlcNAcylation—Implications for targeting the Warburg effect in cancer cells. Biochem. Biophys. Res. Commun. 2015, 465, 838–844. [Google Scholar] [CrossRef]
- Chutkow, W.A.; Patwari, P.; Yoshioka, J.; Lee, R.T. Thioredoxin-interacting protein (Txnip) is a critical regulator of hepatic glucose production. J. Biol. Chem. 2008, 283, 2397–2406. [Google Scholar] [CrossRef] [Green Version]
- Waldhart, A.N.; Dykstra, H.; Peck, A.S.; Boguslawski, E.A.; Madaj, Z.B.; Wen, J.; Veldkamp, K.; Hollowell, M.; Zheng, B.; Cantley, L.C.; et al. Phosphorylation of TXNIP by AKT Mediates Acute Influx of Glucose in Response to Insulin. Cell Rep. 2017, 19, 2005–2013. [Google Scholar] [CrossRef] [Green Version]
- Katsu-Jimenez, Y.; Vazquez-Calvo, C.; Maffezzini, C.; Halldin, M.; Peng, X.; Freyer, C.; Wredenberg, A.; Gimenez-Cassina, A.; Wedell, A.; Arner, E.S.J. Absence of TXNIP in Humans Leads to Lactic Acidosis and Low Serum Methionine Linked to Deficient Respiration on Pyruvate. Diabetes 2019, 68, 709–723. [Google Scholar] [CrossRef] [Green Version]
- Nagaraj, K.; Lapkina-Gendler, L.; Sarfstein, R.; Gurwitz, D.; Pasmanik-Chor, M.; Laron, Z.; Yakar, S.; Werner, H. Identification of thioredoxin-interacting protein (TXNIP) as a downstream target for IGF1 action. Proc. Natl. Acad. Sci. USA 2018, 115, 1045–1050. [Google Scholar] [CrossRef] [Green Version]
- Cittadini, A.; Grossman, J.D.; Stromer, H.; Katz, S.E.; Morgan, J.P.; Douglas, P.S. Importance of an intact growth hormone/insulin-like growth factor 1 axis for normal post-infarction healing: Studies in dwarf rats. Endocrinology 2001, 142, 332–338. [Google Scholar] [CrossRef]
- Davani, E.Y.; Brumme, Z.; Singhera, G.K.; Cote, H.C.; Harrigan, P.R.; Dorscheid, D.R. Insulin-like growth factor-1 protects ischemic murine myocardium from ischemia/reperfusion associated injury. Crit. Care 2003, 7, R176–R183. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Hausenloy, D.J.; Yellon, D.M. New directions for protecting the heart against ischaemia-reperfusion injury: Targeting the Reperfusion Injury Salvage Kinase (RISK)-pathway. Cardiovasc. Res. 2004, 61, 448–460. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Yamashita, K.; Kajstura, J.; Discher, D.J.; Wasserlauf, B.J.; Bishopric, N.H.; Anversa, P.; Webster, K.A. Reperfusion-activated Akt kinase prevents apoptosis in transgenic mouse hearts overexpressing insulin-like growth factor-1. Circ. Res. 2001, 88, 609–614. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Kajstura, J.; Fiordaliso, F.; Andreoli, A.M.; Li, B.; Chimenti, S.; Medow, M.S.; Limana, F.; Nadal-Ginard, B.; Leri, A.; Anversa, P. IGF-1 overexpression inhibits the development of diabetic cardiomyopathy and angiotensin II-mediated oxidative stress. Diabetes 2001, 50, 1414–1424. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Lian, J.D.; al-Jumah, M.; Cwik, V.; Brooke, M.H. Neurotrophic factors decrease the release of creatine kinase and prostaglandin E2 from metabolically stressed muscle. Neuromuscul. Disord. 1998, 8, 7–13. [Google Scholar] [CrossRef]
- Matheny, R.W.Jr.; Adamo, M.L. PI3K p110 alpha and p110 beta have differential effects on Akt activation and protection against oxidative stress-induced apoptosis in myoblasts. Cell Death Differ. 2010, 17, 677–688. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Csiszar, A.; Labinskyy, N.; Perez, V.; Recchia, F.A.; Podlutsky, A.; Mukhopadhyay, P.; Losonczy, G.; Pacher, P.; Austad, S.N.; Bartke, A.; et al. Endothelial function and vascular oxidative stress in long-lived GH/IGF-deficient Ames dwarf mice. Am. J. Physiol. Heart Circ. Physiol. 2008, 295, H1882–H1894. [Google Scholar] [CrossRef] [Green Version]
- Heck, S.; Lezoualc’h, F.; Engert, S.; Behl, C. Insulin-like growth factor-1-mediated neuroprotection against oxidative stress is associated with activation of nuclear factor kappaB. J. Biol. Chem. 1999, 274, 9828–9835. [Google Scholar] [CrossRef] [Green Version]
- Kolosova, N.G.; Stefanova, N.A.; Muraleva, N.A.; Skulachev, V.P. The mitochondria-targeted antioxidant SkQ1 but not N-acetylcysteine reverses aging-related biomarkers in rats. Aging (Albany NY) 2012, 4, 686–694. [Google Scholar] [CrossRef] [Green Version]
- Farr, S.A.; Poon, H.F.; Dogrukol-Ak, D.; Drake, J.; Banks, W.A.; Eyerman, E.; Butterfield, D.A.; Morley, J.E. The antioxidants alpha-lipoic acid and N-acetylcysteine reverse memory impairment and brain oxidative stress in aged SAMP8 mice. J. Neurochem. 2003, 84, 1173–1183. [Google Scholar] [CrossRef] [Green Version]
- Campisi, J.; d’Adda di Fagagna, F. Cellular senescence: When bad things happen to good cells. Nat. Rev. Mol. Cell Biol. 2007, 8, 729–740. [Google Scholar] [CrossRef] [PubMed]
- Sharpless, N.E.; Sherr, C.J. Forging a signature of in vivo senescence. Nat. Rev. Cancer 2015, 15, 397–408. [Google Scholar] [CrossRef] [PubMed]
- Acosta, J.C.; Banito, A.; Wuestefeld, T.; Georgilis, A.; Janich, P.; Morton, J.P.; Athineos, D.; Kang, T.W.; Lasitschka, F.; Andrulis, M.; et al. A complex secretory program orchestrated by the inflammasome controls paracrine senescence. Nat. Cell Biol. 2013, 15, 978–990. [Google Scholar] [CrossRef] [PubMed]
- Coppe, J.P.; Rodier, F.; Patil, C.K.; Freund, A.; Desprez, P.Y.; Campisi, J. Tumor suppressor and aging biomarker p16(INK4a) induces cellular senescence without the associated inflammatory secretory phenotype. J. Biol. Chem. 2011, 286, 36396–36403. [Google Scholar] [CrossRef] [Green Version]
- Rodier, F.; Coppe, J.P.; Patil, C.K.; Hoeijmakers, W.A.; Munoz, D.P.; Raza, S.R.; Freund, A.; Campeau, E.; Davalos, A.R.; Campisi, J. Persistent DNA damage signalling triggers senescence-associated inflammatory cytokine secretion. Nat. Cell Biol. 2009, 11, 973–979. [Google Scholar] [CrossRef]
- Coppe, J.P.; Patil, C.K.; Rodier, F.; Sun, Y.; Munoz, D.P.; Goldstein, J.; Nelson, P.S.; Desprez, P.Y.; Campisi, J. Senescence-associated secretory phenotypes reveal cell-nonautonomous functions of oncogenic RAS and the p53 tumor suppressor. PLoS Biol. 2008, 6, 2853–2868. [Google Scholar] [CrossRef]
- Kuilman, T.; Michaloglou, C.; Vredeveld, L.C.; Douma, S.; van Doorn, R.; Desmet, C.J.; Aarden, L.A.; Mooi, W.J.; Peeper, D.S. Oncogene-induced senescence relayed by an interleukin-dependent inflammatory network. Cell 2008, 133, 1019–1031. [Google Scholar] [CrossRef] [Green Version]
- Correia-Melo, C.; Marques, F.D.; Anderson, R.; Hewitt, G.; Hewitt, R.; Cole, J.; Carroll, B.M.; Miwa, S.; Birch, J.; Merz, A. Mitochondria are required for pro-ageing features of the senescent phenotype. EMBO J. 2016, 35, 724–742. [Google Scholar] [CrossRef]
- Helman, A.; Klochendler, A.; Azazmeh, N.; Gabai, Y.; Horwitz, E.; Anzi, S.; Swisa, A.; Condiotti, R.; Granit, R.Z.; Nevo, Y.; et al. p16(Ink4a)-induced senescence of pancreatic beta cells enhances insulin secretion. Nat. Med. 2016, 22, 412–420. [Google Scholar] [CrossRef] [Green Version]
- Chesnokova, V.; Zhou, C.; Ben-Shlomo, A.; Zonis, S.; Tani, Y.; Ren, S.G.; Melmed, S. Growth hormone is a cellular senescence target in pituitary and nonpituitary cells. Proc. Natl. Acad. Sci. USA 2013, 110, E3331–E3339. [Google Scholar] [CrossRef] [Green Version]
- Matsumoto, R.; Fukuoka, H.; Iguchi, G.; Odake, Y.; Yoshida, K.; Bando, H.; Suda, K.; Nishizawa, H.; Takahashi, M.; Yamada, S.; et al. Accelerated Telomere Shortening in Acromegaly; IGF-I Induces Telomere Shortening and Cellular Senescence. PLoS ONE 2015, 10, e0140189. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Stout, M.B.; Tchkonia, T.; Pirtskhalava, T.; Palmer, A.K.; List, E.O.; Berryman, D.E.; Lubbers, E.R.; Escande, C.; Spong, A.; Masternak, M.M.; et al. Growth hormone action predicts age-related white adipose tissue dysfunction and senescent cell burden in mice. Aging (Albany NY) 2014, 6, 575–586. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Ock, S.; Lee, W.S.; Ahn, J.; Kim, H.M.; Kang, H.; Kim, H.S.; Jo, D.; Abel, E.D.; Lee, T.J.; Kim, J. Deletion of IGF-1 Receptors in Cardiomyocytes Attenuates Cardiac Aging in Male Mice. Endocrinology 2016, 157, 336–345. [Google Scholar] [CrossRef] [PubMed]
- Tran, D.; Bergholz, J.; Zhang, H.; He, H.; Wang, Y.; Zhang, Y.; Li, Q.; Kirkland, J.L.; Xiao, Z.X. Insulin-like growth factor-1 regulates the SIRT1-p53 pathway in cellular senescence. Aging Cell 2014, 13, 669–678. [Google Scholar] [CrossRef] [PubMed]
- Del Nogal-Avila, M.; Troyano-Suarez, N.; Roman-Garcia, P.; Cannata-Andia, J.B.; Rodriguez-Puyol, M.; Rodriguez-Puyol, D.; Kuro, O.M.; Ruiz-Torres, M.P. Amadori products promote cellular senescence activating insulin-like growth factor-1 receptor and down-regulating the antioxidant enzyme catalase. Int. J. Biochem. Cell Biol. 2013, 45, 1255–1264. [Google Scholar] [CrossRef] [PubMed]
- Handayaningsih, A.E.; Takahashi, M.; Fukuoka, H.; Iguchi, G.; Nishizawa, H.; Yamamoto, M.; Suda, K.; Takahashi, Y. IGF-I enhances cellular senescence via the reactive oxygen species-p53 pathway. Biochem. Biophys. Res. Commun. 2012, 425, 478–484. [Google Scholar] [CrossRef]
- Thum, T.; Hoeber, S.; Froese, S.; Klink, I.; Stichtenoth, D.O.; Galuppo, P.; Jakob, M.; Tsikas, D.; Anker, S.D.; Poole-Wilson, P.A.; et al. Age-dependent impairment of endothelial progenitor cells is corrected by growth-hormone-mediated increase of insulin-like growth-factor-1. Circ. Res. 2007, 100, 434–443. [Google Scholar] [CrossRef] [Green Version]
- Kim, S.H.; Lee, E.Y.; Cho, K.H. Incorporation of human growth hormone-2 into proteoliposome enhances tissue regeneration with anti-oxidant and anti-senescence activities. Rejuvenation Res. 2015, 18, 20–29. [Google Scholar] [CrossRef]
- Luo, X.; Jiang, X.; Li, J.; Bai, Y.; Li, Z.; Wei, P.; Sun, S.; Liang, Y.; Han, S.; Li, X.; et al. Insulin-like growth factor-1 attenuates oxidative stress-induced hepatocyte premature senescence in liver fibrogenesis via regulating nuclear p53-progerin interaction. Cell Death Dis. 2019, 10, 451. [Google Scholar] [CrossRef] [Green Version]
- Kluck, R.M.; Bossy-Wetzel, E.; Green, D.R.; Newmeyer, D.D. The release of cytochrome c from mitochondria: A primary site for Bcl-2 regulation of apoptosis. Science 1997, 275, 1132–1136. [Google Scholar] [CrossRef] [Green Version]
- Yang, J.; Liu, X.; Bhalla, K.; Kim, C.N.; Ibrado, A.M.; Cai, J.; Peng, T.I.; Jones, D.P.; Wang, X. Prevention of apoptosis by Bcl-2: release of cytochrome c from mitochondria blocked. Science 1997, 275, 1129–1132. [Google Scholar] [CrossRef] [PubMed]
- Cory, S.; Adams, J.M. The Bcl2 family: Regulators of the cellular life-or-death switch. Nat. Rev. Cancer 2002, 2, 647–656. [Google Scholar] [CrossRef] [PubMed]
- Youle, R.J.; Strasser, A. The BCL-2 protein family: Opposing activities that mediate cell death. Nat. Rev. Mol. Cell Biol. 2008, 9, 47–59. [Google Scholar] [CrossRef] [PubMed]
- Zong, W.X.; Lindsten, T.; Ross, A.J.; MacGregor, G.R.; Thompson, C.B. BH3-only proteins that bind pro-survival Bcl-2 family members fail to induce apoptosis in the absence of Bax and Bak. Genes Dev. 2001, 15, 1481–1486. [Google Scholar] [CrossRef] [Green Version]
- Gonzalez, J.M.; Esteban, M. A poxvirus Bcl-2-like gene family involved in regulation of host immune response: sequence similarity and evolutionary history. Virol. J. 2010, 7, 59. [Google Scholar] [CrossRef] [Green Version]
- Peterson, J.S.; Bass, B.P.; Jue, D.; Rodriguez, A.; Abrams, J.M.; McCall, K. Noncanonical cell death pathways act during Drosophila oogenesis. Genesis 2007, 45, 396–404. [Google Scholar] [CrossRef]
- Fu, Z.; Tindall, D.J. FOXOs, cancer and regulation of apoptosis. Oncogene 2008, 27, 2312–2319. [Google Scholar] [CrossRef] [Green Version]
- Murphy, C.T.; McCarroll, S.A.; Bargmann, C.I.; Fraser, A.; Kamath, R.S.; Ahringer, J.; Li, H.; Kenyon, C. Genes that act downstream of DAF-16 to influence the lifespan of Caenorhabditis elegans. Nature 2003, 424, 277–283. [Google Scholar] [CrossRef]
- Guo, S.; Rena, G.; Cichy, S.; He, X.; Cohen, P.; Unterman, T. Phosphorylation of serine 256 by protein kinase B disrupts transactivation by FKHR and mediates effects of insulin on insulin-like growth factor-binding protein-1 promoter activity through a conserved insulin response sequence. J. Biol. Chem. 1999, 274, 17184–17192. [Google Scholar] [CrossRef] [Green Version]
- Martins, R.; Lithgow, G.J.; Link, W. Long live FOXO: Unraveling the role of FOXO proteins in aging and longevity. Aging Cell 2016, 15, 196–207. [Google Scholar] [CrossRef]
- Paik, J.H.; Kollipara, R.; Chu, G.; Ji, H.; Xiao, Y.; Ding, Z.; Miao, L.; Tothova, Z.; Horner, J.W.; Carrasco, D.R.; et al. FoxOs are lineage-restricted redundant tumor suppressors and regulate endothelial cell homeostasis. Cell 2007, 128, 309–323. [Google Scholar] [CrossRef] [Green Version]
- Ambrogini, E.; Almeida, M.; Martin-Millan, M.; Paik, J.H.; Depinho, R.A.; Han, L.; Goellner, J.; Weinstein, R.S.; Jilka, R.L.; O’Brien, C.A.; et al. FoxO-mediated defense against oxidative stress in osteoblasts is indispensable for skeletal homeostasis in mice. Cell Metab. 2010, 11, 136–146. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Alt, E.U.; Senst, C.; Murthy, S.N.; Slakey, D.P.; Dupin, C.L.; Chaffin, A.E.; Kadowitz, P.J.; Izadpanah, R. Aging alters tissue resident mesenchymal stem cell properties. Stem Cell Res. 2012, 8, 215–225. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Wilson, A.; Shehadeh, L.A.; Yu, H.; Webster, K.A. Age-related molecular genetic changes of murine bone marrow mesenchymal stem cells. BMC Genomics 2010, 11, 229. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Suh, Y.; Lee, K.A.; Kim, W.H.; Han, B.G.; Vijg, J.; Park, S.C. Aging alters the apoptotic response to genotoxic stress. Nat. Med. 2002, 8, 3–4. [Google Scholar] [CrossRef]
- Polyak, K.; Wu, T.T.; Hamilton, S.R.; Kinzler, K.W.; Vogelstein, B. Less death in the dying. Cell Death Differ. 1997, 4, 242–246. [Google Scholar] [CrossRef]
- Kavathia, N.; Jain, A.; Walston, J.; Beamer, B.A.; Fedarko, N.S. Serum markers of apoptosis decrease with age and cancer stage. Aging (Albany NY) 2009, 1, 652–663. [Google Scholar] [CrossRef] [Green Version]
- Medzhitov, R. Inflammation 2010: New adventures of an old flame. Cell 2010, 140, 771–776. [Google Scholar] [CrossRef] [Green Version]
- Bennett, J.M.; Reeves, G.; Billman, G.E.; Sturmberg, J.P. Inflammation-Nature’s Way to Efficiently Respond to All Types of Challenges: Implications for Understanding and Managing “the Epidemic” of Chronic Diseases. Front. Med. (Lausanne) 2018, 5, 316. [Google Scholar] [CrossRef] [Green Version]
- Chen, L.; Deng, H.; Cui, H.; Fang, J.; Zuo, Z.; Deng, J.; Li, Y.; Wang, X.; Zhao, L. Inflammatory responses and inflammation-associated diseases in organs. Oncotarget 2018, 9, 7204–7218. [Google Scholar] [CrossRef] [Green Version]
- O’Brien, K.L.; Finlay, D.K. Immunometabolism and natural killer cell responses. Nat. Rev. Immunol. 2019, 19, 282–290. [Google Scholar] [CrossRef] [PubMed]
- Breda, C.N.S.; Davanzo, G.G.; Basso, P.J.; Saraiva Camara, N.O.; Moraes-Vieira, P.M.M. Mitochondria as central hub of the immune system. Redox Biol. 2019, 26, 101255. [Google Scholar] [CrossRef] [PubMed]
- Strickland, M.; Yacoubi-Loueslati, B.; Bouhaouala-Zahar, B.; Pender, S.L.F.; Larbi, A. Relationships Between Ion Channels, Mitochondrial Functions and Inflammation in Human Aging. Front. Physiol. 2019, 10, 158. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Van Horssen, J.; van Schaik, P.; Witte, M. Inflammation and mitochondrial dysfunction: A vicious circle in neurodegenerative disorders? Neurosci. Lett. 2019, 710, 132931. [Google Scholar] [CrossRef]
- Kermani, H.; Goffinet, L.; Mottet, M.; Bodart, G.; Morrhaye, G.; Dardenne, O.; Renard, C.; Overbergh, L.; Baron, F.; Beguin, Y.; et al. Expression of the growth hormone/insulin-like growth factor axis during Balb/c thymus ontogeny and effects of growth hormone upon ex vivo T cell differentiation. Neuroimmunomodulation 2012, 19, 137–147. [Google Scholar] [CrossRef]
- Smith, T.J. Insulin-like growth factor-I regulation of immune function: A potential therapeutic target in autoimmune diseases? Pharmacol. Rev. 2010, 62, 199–236. [Google Scholar] [CrossRef] [Green Version]
- Weigent, D.A.; Blalock, J.E. Expression of growth hormone by lymphocytes. Int. Rev. Immunol. 1989, 4, 193–211. [Google Scholar] [CrossRef]
- Rappolee, D.A.; Mark, D.; Banda, M.J.; Werb, Z. Wound macrophages express TGF-alpha and other growth factors in vivo: Analysis by mRNA phenotyping. Science 1988, 241, 708–712. [Google Scholar] [CrossRef]
- Spaziani, S.; Imperlini, E.; Mancini, A.; Caterino, M.; Buono, P.; Orru, S. Insulin-like growth factor 1 receptor signaling induced by supraphysiological doses of IGF-1 in human peripheral blood lymphocytes. Proteomics 2014, 14, 1623–1629. [Google Scholar] [CrossRef]
- Wong, S.C.; Dobie, R.; Altowati, M.A.; Werther, G.A.; Farquharson, C.; Ahmed, S.F. Growth and the Growth Hormone-Insulin Like Growth Factor 1 Axis in Children With Chronic Inflammation: Current Evidence, Gaps in Knowledge, and Future Directions. Endocr. Rev. 2016, 37, 62–110. [Google Scholar] [CrossRef]
- Masternak, M.M.; Bartke, A. Growth hormone, inflammation and aging. Pathobiol. Aging Age Relat. Dis. 2012, 2. [Google Scholar] [CrossRef] [PubMed]
- Sadagurski, M.; Landeryou, T.; Cady, G.; Kopchick, J.J.; List, E.O.; Berryman, D.E.; Bartke, A.; Miller, R.A. Growth hormone modulates hypothalamic inflammation in long-lived pituitary dwarf mice. Aging Cell 2015, 14, 1045–1054. [Google Scholar] [CrossRef] [PubMed]
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Poudel, S.B.; Dixit, M.; Neginskaya, M.; Nagaraj, K.; Pavlov, E.; Werner, H.; Yakar, S. Effects of GH/IGF on the Aging Mitochondria. Cells 2020, 9, 1384. https://doi.org/10.3390/cells9061384
Poudel SB, Dixit M, Neginskaya M, Nagaraj K, Pavlov E, Werner H, Yakar S. Effects of GH/IGF on the Aging Mitochondria. Cells. 2020; 9(6):1384. https://doi.org/10.3390/cells9061384
Chicago/Turabian StylePoudel, Sher Bahadur, Manisha Dixit, Maria Neginskaya, Karthik Nagaraj, Evgeny Pavlov, Haim Werner, and Shoshana Yakar. 2020. "Effects of GH/IGF on the Aging Mitochondria" Cells 9, no. 6: 1384. https://doi.org/10.3390/cells9061384