1
|
Flannagan RS, Jaumouillé V and Grinstein
S: The cell biology of phagocytosis. Annu Rev Pathol. 7:61–98.
2012. View Article : Google Scholar : PubMed/NCBI
|
2
|
Rosales C and Uribe-Querol E:
Phagocytosis: A fundamental process in immunity. Biomed Res Int.
2017:90428512017. View Article : Google Scholar : PubMed/NCBI
|
3
|
Gordon S: Phagocytosis: An immunobiologic
process. Immunity. 44:463–475. 2016. View Article : Google Scholar : PubMed/NCBI
|
4
|
Shklover J, Levy-Adam F and Kurant E:
Apoptotic cell clearance in development. Curr Top Dev Biol.
114:297–334. 2015. View Article : Google Scholar : PubMed/NCBI
|
5
|
Alva-Murillo N, López-Meza JE and
Ochoa-Zarzosa A: Nonprofessional phagocytic cell receptors involved
in Staphylococcus aureus internalization. Biomed Res Int.
2014:5385462014. View Article : Google Scholar : PubMed/NCBI
|
6
|
Juncadella IJ, Kadl A, Sharma AK,
Hochreiter-Hufford A, Borish L and Ravichandran KS: Apoptotic cell
clearance by bronchial epithelial cells critically influences
airway inflammation. Nature. 493:547–551. 2013. View Article : Google Scholar : PubMed/NCBI
|
7
|
Yakar S and Adamo ML: Insulin-like growth
factor 1 physiology: Lessons from mouse models. Endocrinol Metab
Clin North Am. 41:231–247. 2012. View Article : Google Scholar : PubMed/NCBI
|
8
|
Troncoso R, Ibarra C, Vicencio JM,
Jaimovich E and Lavandero S: New insights into IGF-1 signaling in
the heart. Trends Endocrinol Metab. 25:128–137. 2014. View Article : Google Scholar : PubMed/NCBI
|
9
|
Wang Z, Li W, Guo Q, Wang Y, Ma L and
Zhang X: Insulin-like growth factor-1 signaling in lung development
and inflammatory lung diseases. Biomed Res Int.
2018:60575892018.PubMed/NCBI
|
10
|
Narasaraju TA, Chen H, Weng T, Bhaskaran
M, Jin N, Chen J, Chen Z, Chinoy MR and Liu L: Expression profile
of IGF system during lung injury and recovery in rats exposed to
hyperoxia: a possible role of IGF-1 in alveolar epithelial cell
proliferation and differentiation. J Cell Biochem. 97:984–998.
2006. View Article : Google Scholar : PubMed/NCBI
|
11
|
Dos Santos Reis MD, Dos Santos YMO, de
Menezes CA, Borbely KSC and Smaniotto S: Resident murine macrophage
migration and phagocytosis are modulated by growth hormone. Cell
Biol Int. 42:615–623. 2018. View Article : Google Scholar : PubMed/NCBI
|
12
|
Yao X, Wang W, Li Y, Huang P, Zhang Q,
Wang J, Wang W, Lv Z, An Y, Qin J, et al: IL-25 induces airways
angiogenesis and expression of multiple angiogenic factors in a
murine asthma model. Respir Res. 16:392015. View Article : Google Scholar : PubMed/NCBI
|
13
|
BahramiMahneh S, Movahedi M, Aryan Z,
Bahar MA, Rezaei A, Sadr M and Rezaei N; Universal Scientific
Education and Research Network (USERN), : Serum IL-33 is elevated
in children with asthma and is associated with disease severity.
Int Arch Allergy Immunol. 168:193–196. 2015. View Article : Google Scholar : PubMed/NCBI
|
14
|
Jung HJ and Suh Y: Regulation of IGF-1
signaling by microRNAs. Front Genet. 5:4722015. View Article : Google Scholar : PubMed/NCBI
|
15
|
Hoshino M, Nakamura Y, Sim JJ, Yamashiro
Y, Uchida K, Hosaka K and Isogai S: Inhaled corticosteroid reduced
lamina reticularis of the basement membrane by modulation of
insulin-like growth factor (IGF)-I expression in bronchial asthma.
Clin Exp Allergy. 28:568–577. 1998. View Article : Google Scholar : PubMed/NCBI
|
16
|
Préfontaine D, Nadigel J, Chouiali F,
Audusseau S, Semlali A, Chakir J, Martin JG and Hamid Q: Increased
IL-33 expression by epithelial cells in bronchial asthma. J Allergy
Clin Immunol. 125:752–754. 2010. View Article : Google Scholar : PubMed/NCBI
|
17
|
Préfontaine D, Lajoie-Kadoch S, Foley S,
Audusseau S, Olivenstein R, Halayko AJ, Lemière C, Martin JG and
Hamid Q: Increased expression of IL-33 in severe asthma: Evidence
of expression by airway smoothmuscle cells. J Immunol.
183:5094–5103. 2009. View Article : Google Scholar : PubMed/NCBI
|
18
|
Kurowska-Stolarska M, Stolarski B, Kewin P
Murphy G, Corrigan CJ, Ying S, Pitman N, Mirchandani A, Rana B, van
Rooijen N, et al: IL-33 amplifies the polarization of alternatively
activated macrophages that contribute to airway inflammation. J
Immunol. 183:6469–6477. 2009. View Article : Google Scholar : PubMed/NCBI
|
19
|
Lloyd CM: IL-33 family members and
asthma-bridging innate and adaptive immune responses. Curr Opin
Immunol. 22:800–806. 2010. View Article : Google Scholar : PubMed/NCBI
|
20
|
Nile CJ, Barksby E, Jitprasertwong P,
Preshaw PM and Taylor JJ: Expression and regulation of
interleukin-33 in human monocytes. Immunology. 130:172–180. 2010.
View Article : Google Scholar : PubMed/NCBI
|
21
|
Ahluwalia A, Jones MK, Hoa N and Tarnawski
AS: NGF protects endothelial cells from indomethacin-induced injury
through activation of mitochondria and upregulation of IGF-1. Cell
Signal. 40:22–29. 2017. View Article : Google Scholar : PubMed/NCBI
|
22
|
Szczęsny E, Slusarczyk J, Głombik K,
Budziszewska B, Kubera M, Lasoń W and Basta-Kaim A: Possible
contribution of IGF-1 to depressive disorder. Pharmacol Rep.
65:1622–1631. 2013. View Article : Google Scholar : PubMed/NCBI
|
23
|
Wang Y, Bai Y, Li Y, Liang G, Jiang Y, Liu
Z, Liu M, Hao J, Zhang X, Hu X, et al: IL-15 enhances activation
and IGF-1 production of dendritic epidermal T cells to promote
wound healing in diabetic mice. Front Immunol. 8:15572017.
View Article : Google Scholar : PubMed/NCBI
|
24
|
Fritz JM, Dwyer-Nield L and Malkinson AM:
Stimulation of neoplastic mouse lung cell proliferation by alveolar
macrophage-derived, insulin-like growth factor-1 can be blocked by
inhibiting MEK and PI3K activation. Mol Cancer. 10:762011.
View Article : Google Scholar : PubMed/NCBI
|
25
|
Knuever J, Willenborg S, Ding X Akyüz MD,
Partridge L, Niessen CM, Brüning JC and Eming SA: Myeloid
cell-restricted Insulin/IGF-1 receptor deficiency protects against
skin inflammation. J Immunol. 195:5296–5308. 2015. View Article : Google Scholar : PubMed/NCBI
|
26
|
Piñeiro-Hermida S, Gregory JA, López IP,
Torrens R, Ruíz-Martínez C, Adner M and Pichel JG: Attenuated
airway hyperresponsiveness and mucus secretion in HDM-exposed
Igf1r-deficientmice. Allergy. 72:1317–1326. 2017. View Article : Google Scholar : PubMed/NCBI
|
27
|
Vieira RP, Silva RA, Oliveira-Junior MC,
Greiffo FR, Ligeiro-Oliveira AP, Martins MA and Carvalho CR:
Exercise deactivates leukocytes in asthma. Int J Sports Med.
35:629–635. 2014.PubMed/NCBI
|
28
|
Vieira RP, de Andrade VF, Duarte AC, Dos
Santos AB, Mauad T, Martins MA, Dolhnikoff M and Carvalho CR:
Aerobic conditioning and allergic pulmonary inflammation in mice.
II. Effects on lung vascular and parenchymal inflammation and
remodeling. Am J Physiol Lung Cell Mol Physiol. 295:L670–L679.
2008. View Article : Google Scholar : PubMed/NCBI
|
29
|
Vieira RP, Duarte AC, Claudino RC, Perini
A, Santos AB, Moriya HT, Arantes-Costa FM, Martins MA, Carvalho CR
and Dolhnikoff M: Creatine supplementation exacerbates allergic
lung inflammation and airway remodeling in mice. Am J Respir Cell
Mol Biol. 37:660–667. 2007. View Article : Google Scholar : PubMed/NCBI
|
30
|
Ferreira SC, Toledo AC, Hage M, Santos AB,
Medeiros MC, Martins MA, Carvalho CR, Dolhnikoff M and Vieira RP:
Creatine activates airway epithelium in asthma. Int J Sports Med.
31:906–912. 2010. View Article : Google Scholar : PubMed/NCBI
|
31
|
Xiao W, Chen P, Wang R and Dong J:
Overload training inhibits phagocytosis and ROS generation of
peritoneal macrophages: Role of IGF-1 and MGF. Eur J Appl Physiol.
113:117–125. 2013. View Article : Google Scholar : PubMed/NCBI
|