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Published in: Diabetologia 2/2014

01-02-2014 | Article

Attenuation of flightless I improves wound healing and enhances angiogenesis in a murine model of type 1 diabetes

Authors: Nadira Ruzehaji, Zlatko Kopecki, Elizabeth Melville, Sarah L. Appleby, Claudine S. Bonder, Ruth M. Arkell, Robert Fitridge, Allison J. Cowin

Published in: Diabetologia | Issue 2/2014

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Abstract

Aims/hypothesis

Skin lesions and ulcerations are severe complications of diabetes that often result in leg amputations. In this study we investigated the function of the cytoskeletal protein flightless I (FLII) in diabetic wound healing. We hypothesised that overexpression of FLII would have a negative effect on diabetic wound closure and modulation of this protein using specific FLII-neutralising antibodies (FnAb) would enhance cellular proliferation, migration and angiogenesis within the diabetic wound.

Methods

Using a streptozotocin-induced model of diabetes we investigated the effect of altered FLII levels through Flii genetic knockdown, overexpression or treatment with FnAb on wound healing. Diabetic wounds were assessed using histology, immunohistochemistry and biochemical analysis. In vitro and in vivo assays of angiogenesis were used to assess the angiogenic response.

Results

FLII levels were elevated in the wounds of both diabetic mice and humans. Reduction in the level of FLII improved healing of murine diabetic wounds and promoted a robust pro-angiogenic response with significantly elevated von Willebrand factor (vWF) and vascular endothelial growth factor (VEGF)-positive endothelial cell infiltration. Diabetic mouse wounds treated intradermally with FnAb showed improved healing and a significantly increased rate of re-epithelialisation. FnAb improved the angiogenic response through enhanced formation of capillary tubes and functional neovasculature. Reducing the level of FLII led to increased numbers of mature blood vessels, increased recruitment of smooth muscle actin-α-positive cells and improved tight junction formation.

Conclusions/interpretation

Reducing the level of FLII in a wound may be a potential therapeutic approach for the treatment of diabetic foot ulcers.
Appendix
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Literature
2.
go back to reference Oyibo SO, Jude EB, Tarawneh I, Nguyen HC, Harkless LB, Boulton AJ (2001) A comparison of two diabetic foot ulcer classification systems: the Wagner and the University of Texas wound classification systems. Diabetes Care 24:84–88PubMedCrossRef Oyibo SO, Jude EB, Tarawneh I, Nguyen HC, Harkless LB, Boulton AJ (2001) A comparison of two diabetic foot ulcer classification systems: the Wagner and the University of Texas wound classification systems. Diabetes Care 24:84–88PubMedCrossRef
3.
go back to reference Albiero M, Menegazzo L, Boscaro E, Agostini C, Avogaro A, Fadini GP (2011) Defective recruitment, survival and proliferation of bone marrow-derived progenitor cells at sites of delayed diabetic wound healing in mice. Diabetologia 54:945–953PubMedCrossRef Albiero M, Menegazzo L, Boscaro E, Agostini C, Avogaro A, Fadini GP (2011) Defective recruitment, survival and proliferation of bone marrow-derived progenitor cells at sites of delayed diabetic wound healing in mice. Diabetologia 54:945–953PubMedCrossRef
4.
go back to reference Xue W, Cai L, Tan Y et al (2010) Cardiac-specific overexpression of HIF-1α prevents deterioration of glycolytic pathway and cardiac remodeling in streptozotocin-induced diabetic mice. Am J Pathol 177:97–105PubMedCrossRef Xue W, Cai L, Tan Y et al (2010) Cardiac-specific overexpression of HIF-1α prevents deterioration of glycolytic pathway and cardiac remodeling in streptozotocin-induced diabetic mice. Am J Pathol 177:97–105PubMedCrossRef
5.
go back to reference Carmeliet P, Jain RK (2011) Molecular mechanisms and clinical applications of angiogenesis. Nature 473:298–307PubMedCrossRef Carmeliet P, Jain RK (2011) Molecular mechanisms and clinical applications of angiogenesis. Nature 473:298–307PubMedCrossRef
6.
go back to reference Davy DA, Ball EE, Matthaei KI, Campbell HD, Crouch MF (2000) The flightless I protein localizes to actin-based structures during embryonic development. Immunol Cell Biol 78:423–429PubMedCrossRef Davy DA, Ball EE, Matthaei KI, Campbell HD, Crouch MF (2000) The flightless I protein localizes to actin-based structures during embryonic development. Immunol Cell Biol 78:423–429PubMedCrossRef
7.
go back to reference Davy DA, Campbell HD, Fountain S, de Jong D, Crouch MF (2001) The flightless I protein colocalizes with actin- and microtubule-based structures in motile Swiss 3T3 fibroblasts: evidence for the involvement of PI 3-kinase and Ras-related small GTPases. J Cell Sci 114:549–562PubMed Davy DA, Campbell HD, Fountain S, de Jong D, Crouch MF (2001) The flightless I protein colocalizes with actin- and microtubule-based structures in motile Swiss 3T3 fibroblasts: evidence for the involvement of PI 3-kinase and Ras-related small GTPases. J Cell Sci 114:549–562PubMed
8.
go back to reference Goshima M, Kariya K, Yamawaki-Kataoka Y et al (1999) Characterization of a novel Ras-binding protein Ce-FLI-1 comprising leucine-rich repeats and gelsolin-like domains. Biochem Biophys Res Commun 257:111–116PubMedCrossRef Goshima M, Kariya K, Yamawaki-Kataoka Y et al (1999) Characterization of a novel Ras-binding protein Ce-FLI-1 comprising leucine-rich repeats and gelsolin-like domains. Biochem Biophys Res Commun 257:111–116PubMedCrossRef
9.
go back to reference Campbell HD, Fountain S, McLennan IS et al (2002) Fliih, a gelsolin-related cytoskeletal regulator essential for early mammalian embryonic development. Mol Cell Biol 22:3518–3526PubMedCentralPubMedCrossRef Campbell HD, Fountain S, McLennan IS et al (2002) Fliih, a gelsolin-related cytoskeletal regulator essential for early mammalian embryonic development. Mol Cell Biol 22:3518–3526PubMedCentralPubMedCrossRef
10.
go back to reference Lei N, Franken L, Ruzehaji N, Offenhauser C, Cowin AJ, Murray RZ (2012) Flightless, secreted through a late endosome/lysosome pathway, binds LPS and dampens cytokine secretion. J Cell Sci 125:4288–4296PubMedCrossRef Lei N, Franken L, Ruzehaji N, Offenhauser C, Cowin AJ, Murray RZ (2012) Flightless, secreted through a late endosome/lysosome pathway, binds LPS and dampens cytokine secretion. J Cell Sci 125:4288–4296PubMedCrossRef
11.
go back to reference Bella J, Hindle KL, McEwan PA, Lovell SC (2008) The leucine-rich repeat structure. Cell Mol Life Sci 65:2307–2333PubMedCrossRef Bella J, Hindle KL, McEwan PA, Lovell SC (2008) The leucine-rich repeat structure. Cell Mol Life Sci 65:2307–2333PubMedCrossRef
12.
go back to reference Kobe B, Kajava AV (2001) The leucine-rich repeat as a protein recognition motif. Curr Opin Struct Biol 11:725–732PubMedCrossRef Kobe B, Kajava AV (2001) The leucine-rich repeat as a protein recognition motif. Curr Opin Struct Biol 11:725–732PubMedCrossRef
13.
go back to reference Wang T, Chuang TH, Ronni T et al (2006) Flightless I homolog negatively modulates the TLR pathway. J Immunol 176:1355–1362PubMed Wang T, Chuang TH, Ronni T et al (2006) Flightless I homolog negatively modulates the TLR pathway. J Immunol 176:1355–1362PubMed
14.
go back to reference Dai P, Jeong SY, Yu Y et al (2009) Modulation of TLR signaling by multiple MyD88-interacting partners including leucine-rich repeat Fli-I-interacting proteins. J Immunol 182:3450–3460PubMedCrossRef Dai P, Jeong SY, Yu Y et al (2009) Modulation of TLR signaling by multiple MyD88-interacting partners including leucine-rich repeat Fli-I-interacting proteins. J Immunol 182:3450–3460PubMedCrossRef
15.
go back to reference Hayashi T, Funato Y, Terabayashi T et al (2010) Nucleoredoxin negatively regulates Toll-like receptor 4 signaling via recruitment of flightless-I to myeloid differentiation primary response gene (88). J Biol Chem 285:18586–18593PubMedCrossRef Hayashi T, Funato Y, Terabayashi T et al (2010) Nucleoredoxin negatively regulates Toll-like receptor 4 signaling via recruitment of flightless-I to myeloid differentiation primary response gene (88). J Biol Chem 285:18586–18593PubMedCrossRef
16.
go back to reference Li J, Yin HL, Yuan J (2008) Flightless-I regulates proinflammatory caspases by selectively modulating intracellular localization and caspase activity. J Cell Biol 181:321–333PubMedCrossRef Li J, Yin HL, Yuan J (2008) Flightless-I regulates proinflammatory caspases by selectively modulating intracellular localization and caspase activity. J Cell Biol 181:321–333PubMedCrossRef
17.
go back to reference Cowin AJ, Adams DH, Strudwick XL et al (2007) Flightless I deficiency enhances wound repair by increasing cell migration and proliferation. J Pathol 211:572–581PubMedCrossRef Cowin AJ, Adams DH, Strudwick XL et al (2007) Flightless I deficiency enhances wound repair by increasing cell migration and proliferation. J Pathol 211:572–581PubMedCrossRef
18.
go back to reference Ruzehaji N, Grose R, Krumbiegel D et al (2012) Cytoskeletal protein Flightless (Flii) is elevated in chronic and acute human wounds and wound fluid: neutralizing its activity in chronic but not acute wound fluid improves cellular proliferation. Eur J Dermatol 22:740–750PubMed Ruzehaji N, Grose R, Krumbiegel D et al (2012) Cytoskeletal protein Flightless (Flii) is elevated in chronic and acute human wounds and wound fluid: neutralizing its activity in chronic but not acute wound fluid improves cellular proliferation. Eur J Dermatol 22:740–750PubMed
19.
go back to reference Adams DH, Ruzehaji N, Strudwick XL et al (2009) Attenuation of flightless I, an actin-remodelling protein, improves burn injury repair via modulation of transforming growth factor (TGF)-beta1 and TGF-beta3. Br J Dermatol 161:326–336PubMedCrossRef Adams DH, Ruzehaji N, Strudwick XL et al (2009) Attenuation of flightless I, an actin-remodelling protein, improves burn injury repair via modulation of transforming growth factor (TGF)-beta1 and TGF-beta3. Br J Dermatol 161:326–336PubMedCrossRef
20.
go back to reference Jackson JE, Kopecki Z, Adams DH, Cowin AJ (2012) Flii neutralizing antibodies improve wound healing in porcine preclinical studies. Wound Repair Regen 20:523–536 Jackson JE, Kopecki Z, Adams DH, Cowin AJ (2012) Flii neutralizing antibodies improve wound healing in porcine preclinical studies. Wound Repair Regen 20:523–536
21.
go back to reference Thomsen N, Chappell A, Ali RG et al (2011) Mouse strains for the ubiquitous or conditional overexpression of the Flii gene. Genesis 49:681–688PubMedCrossRef Thomsen N, Chappell A, Ali RG et al (2011) Mouse strains for the ubiquitous or conditional overexpression of the Flii gene. Genesis 49:681–688PubMedCrossRef
22.
go back to reference Barrett JM, Parham KA, Pippal JB et al (2011) Over-expression of sphingosine kinase-1 enhances a progenitor phenotype in human endothelial cells. Microcirculation 18:583–597PubMedCrossRef Barrett JM, Parham KA, Pippal JB et al (2011) Over-expression of sphingosine kinase-1 enhances a progenitor phenotype in human endothelial cells. Microcirculation 18:583–597PubMedCrossRef
23.
go back to reference Johnson MS, Ryals JM, Wright DE (2008) Early loss of peptidergic intraepidermal nerve fibers in an STZ-induced mouse model of insensate diabetic neuropathy. Pain 140:35–47PubMedCentralPubMedCrossRef Johnson MS, Ryals JM, Wright DE (2008) Early loss of peptidergic intraepidermal nerve fibers in an STZ-induced mouse model of insensate diabetic neuropathy. Pain 140:35–47PubMedCentralPubMedCrossRef
24.
go back to reference Kopecki Z, Arkell R, Powell BC, Cowin AJ (2009) Flightless I regulates hemidesmosome formation and integrin-mediated cellular adhesion and migration during wound repair. J Invest Dermatol 129:2031–2045PubMedCrossRef Kopecki Z, Arkell R, Powell BC, Cowin AJ (2009) Flightless I regulates hemidesmosome formation and integrin-mediated cellular adhesion and migration during wound repair. J Invest Dermatol 129:2031–2045PubMedCrossRef
25.
go back to reference Baker M, Robinson SD, Lechertier T et al (2012) Use of the mouse aortic ring assay to study angiogenesis. Nat Protoc 7:89–104CrossRef Baker M, Robinson SD, Lechertier T et al (2012) Use of the mouse aortic ring assay to study angiogenesis. Nat Protoc 7:89–104CrossRef
26.
go back to reference Litwin M, Clark K, Noack L et al (1997) Novel cytokine-independent induction of endothelial adhesion molecules regulated by platelet/endothelial cell adhesion molecule (CD31). J Cell Biol 139:219–228PubMedCrossRef Litwin M, Clark K, Noack L et al (1997) Novel cytokine-independent induction of endothelial adhesion molecules regulated by platelet/endothelial cell adhesion molecule (CD31). J Cell Biol 139:219–228PubMedCrossRef
27.
go back to reference Bonder CS, Sun WY, Matthews T et al (2009) Sphingosine kinase regulates the rate of endothelial progenitor cell differentiation. Blood 113:2108–2117PubMedCrossRef Bonder CS, Sun WY, Matthews T et al (2009) Sphingosine kinase regulates the rate of endothelial progenitor cell differentiation. Blood 113:2108–2117PubMedCrossRef
28.
go back to reference Kano MR, Morishita Y, Iwata C et al (2005) VEGF-A and FGF-2 synergistically promote neoangiogenesis through enhancement of endogenous PDGF-B-PDGFRbeta signaling. J Cell Sci 118:3759–3768PubMedCrossRef Kano MR, Morishita Y, Iwata C et al (2005) VEGF-A and FGF-2 synergistically promote neoangiogenesis through enhancement of endogenous PDGF-B-PDGFRbeta signaling. J Cell Sci 118:3759–3768PubMedCrossRef
29.
go back to reference Kopecki Z, O’Neill GM, Arkell RM, Cowin AJ (2011) Regulation of focal adhesions by flightless i involves inhibition of paxillin phosphorylation via a Rac1-dependent pathway. J Invest Dermatol 131:1450–1459PubMedCrossRef Kopecki Z, O’Neill GM, Arkell RM, Cowin AJ (2011) Regulation of focal adhesions by flightless i involves inhibition of paxillin phosphorylation via a Rac1-dependent pathway. J Invest Dermatol 131:1450–1459PubMedCrossRef
Metadata
Title
Attenuation of flightless I improves wound healing and enhances angiogenesis in a murine model of type 1 diabetes
Authors
Nadira Ruzehaji
Zlatko Kopecki
Elizabeth Melville
Sarah L. Appleby
Claudine S. Bonder
Ruth M. Arkell
Robert Fitridge
Allison J. Cowin
Publication date
01-02-2014
Publisher
Springer Berlin Heidelberg
Published in
Diabetologia / Issue 2/2014
Print ISSN: 0012-186X
Electronic ISSN: 1432-0428
DOI
https://doi.org/10.1007/s00125-013-3107-6

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