Skip to main content
Top
Published in: Angiogenesis 1/2012

01-03-2012 | Original Paper

In vivo laser speckle imaging reveals microvascular remodeling and hemodynamic changes during wound healing angiogenesis

Authors: Abhishek Rege, Nitish V. Thakor, Kevin Rhie, Arvind P. Pathak

Published in: Angiogenesis | Issue 1/2012

Login to get access

Abstract

Laser speckle contrast imaging (LSCI) is a high-resolution and high contrast optical imaging technique often used to characterize hemodynamic changes in short-term physiological experiments. In this study, we demonstrate the utility of LSCI for characterizing microvascular remodeling and hemodynamic changes during wound healing angiogenesis in vivo. A 2 mm diameter hole was made in the mouse ear and the periphery of the wound imaged in vivo using LSCI over 12 days. We were able to visualize and quantify the vascular and perfusion changes that accompanied wound healing in the microenvironment proximal to the wound, and validated these changes with histology. We found that consistent with the stages of wound healing, microvessel density increased during the initial inflammatory phase (i.e., day 0–3), stayed elevated through the tissue formation phase (i.e., until day 7) and returned to baseline during the tissue remodeling phase (i.e., by day 12). Concomitant “wide area mapping” of blood flow revealed that tissue perfusion in the wound periphery initially decreased, gradually increased from day 3–7, and subsided as healing completed. Interestingly, some regions exhibited a reestablishment of tissue perfusion approximately 6 days earlier than the ~18 days usually reported for the long term remodeling phase. The results from this study demonstrate that LSCI is an ideal platform for elucidating in vivo changes in microvascular hemodynamics and angiogenesis, and has the potential to offer invaluable insights in a range of disease models involving abnormal hemodynamics, such as diabetes and tumors.
Appendix
Available only for authorised users
Literature
2.
go back to reference Kiyama T, Naito M, Shitama H, Shinoda T, Maeyama A (2008) Comparison of skin blood flow between mini- and standard-incision approaches during total hip arthroplasty. J Arthroplast 23:1045–1049CrossRef Kiyama T, Naito M, Shitama H, Shinoda T, Maeyama A (2008) Comparison of skin blood flow between mini- and standard-incision approaches during total hip arthroplasty. J Arthroplast 23:1045–1049CrossRef
3.
go back to reference Koskela M, Gaddnas F, Ala-Kokko TI, Laurila JJ, Saarnio J et al (2009) Epidermal wound healing in severe sepsis and septic shock in humans. Crit Care 13:R100PubMedCrossRef Koskela M, Gaddnas F, Ala-Kokko TI, Laurila JJ, Saarnio J et al (2009) Epidermal wound healing in severe sepsis and septic shock in humans. Crit Care 13:R100PubMedCrossRef
4.
go back to reference Ngo BT, Hayes KD, DiMiao DJ, Srinivasan SK, Huerter CJ et al (2005) Manifestations of cutaneous diabetic microangiopathy. Am J Clin Dermatol 6:225–237PubMedCrossRef Ngo BT, Hayes KD, DiMiao DJ, Srinivasan SK, Huerter CJ et al (2005) Manifestations of cutaneous diabetic microangiopathy. Am J Clin Dermatol 6:225–237PubMedCrossRef
5.
6.
go back to reference Sorg H, Krueger C, Vollmar B (2007) Intravital insights in skin wound healing using the mouse dorsal skin fold chamber. J Anat 211:810–818PubMedCrossRef Sorg H, Krueger C, Vollmar B (2007) Intravital insights in skin wound healing using the mouse dorsal skin fold chamber. J Anat 211:810–818PubMedCrossRef
7.
go back to reference Demirdogen B, Elcin AE, Elcin YM (2010) Neovascularization by bFGF releasing hyaluronic acid-gelatin microspheres: in vitro and in vivo studies. Growth Factors 28:426–436PubMedCrossRef Demirdogen B, Elcin AE, Elcin YM (2010) Neovascularization by bFGF releasing hyaluronic acid-gelatin microspheres: in vitro and in vivo studies. Growth Factors 28:426–436PubMedCrossRef
8.
go back to reference Rendell MS, Johnson ML, Smith D, Finney D, Capp C et al (2002) Skin blood flow response in the rat model of wound healing: expression of vasoactive factors. J Surg Res 107:18–26PubMed Rendell MS, Johnson ML, Smith D, Finney D, Capp C et al (2002) Skin blood flow response in the rat model of wound healing: expression of vasoactive factors. J Surg Res 107:18–26PubMed
9.
go back to reference Shaterian A, Borboa A, Sawada R, Costantini T, Potenza B et al (2009) Real-time analysis of the kinetics of angiogenesis and vascular permeability in an animal model of wound healing. Burns 35:811–817PubMedCrossRef Shaterian A, Borboa A, Sawada R, Costantini T, Potenza B et al (2009) Real-time analysis of the kinetics of angiogenesis and vascular permeability in an animal model of wound healing. Burns 35:811–817PubMedCrossRef
10.
go back to reference Rendell MS, Milliken BK, Finnegan MF, Finney DE, Healy JC et al (1998) The microvascular composition of the healing wound compared at skin sites with nutritive versus arteriovenous perfusion. J Surg Res 80:373–379PubMedCrossRef Rendell MS, Milliken BK, Finnegan MF, Finney DE, Healy JC et al (1998) The microvascular composition of the healing wound compared at skin sites with nutritive versus arteriovenous perfusion. J Surg Res 80:373–379PubMedCrossRef
11.
go back to reference North KA, Sanders AG (1958) The development of collateral circulation in the mouse’s ear. Circ Res 6:721–727PubMed North KA, Sanders AG (1958) The development of collateral circulation in the mouse’s ear. Circ Res 6:721–727PubMed
12.
go back to reference Rendell MS, Milliken BK, Finnegan MF, Finney DA, Healy JC (1997) The skin blood flow response in wound healing. Microvasc Res 53:222–234PubMedCrossRef Rendell MS, Milliken BK, Finnegan MF, Finney DA, Healy JC (1997) The skin blood flow response in wound healing. Microvasc Res 53:222–234PubMedCrossRef
13.
go back to reference Murari K, Li N, Rege A, Jia X, All A et al (2007) Contrast-enhanced imaging of cerebral vasculature with laser speckle. Appl Opt 46:5340–5346PubMedCrossRef Murari K, Li N, Rege A, Jia X, All A et al (2007) Contrast-enhanced imaging of cerebral vasculature with laser speckle. Appl Opt 46:5340–5346PubMedCrossRef
14.
go back to reference Dunn AK, Bolay H, Moskowitz MA, Boas DA (2001) Dynamic imaging of cerebral blood flow using laser speckle. J Cereb Blood Flow Metab 21:195–201PubMedCrossRef Dunn AK, Bolay H, Moskowitz MA, Boas DA (2001) Dynamic imaging of cerebral blood flow using laser speckle. J Cereb Blood Flow Metab 21:195–201PubMedCrossRef
15.
go back to reference Ayata C, Dunn AK, Gursoy OY, Huang Z, Boas DA et al (2004) Laser speckle flowmetry for the study of cerebrovascular physiology in normal and ischemic mouse cortex. J Cereb Blood Flow Metab 24:744–755PubMedCrossRef Ayata C, Dunn AK, Gursoy OY, Huang Z, Boas DA et al (2004) Laser speckle flowmetry for the study of cerebrovascular physiology in normal and ischemic mouse cortex. J Cereb Blood Flow Metab 24:744–755PubMedCrossRef
16.
go back to reference Nakagami G, Sari Y, Nagase T, Iizaka S, Ohta Y, et al. (2010) Evaluation of the usefulness of skin blood flow measurements by laser speckle flowgraphy in pressure-induced ischemic wounds in rats. Ann Plast Surg 64:351–354 Nakagami G, Sari Y, Nagase T, Iizaka S, Ohta Y, et al. (2010) Evaluation of the usefulness of skin blood flow measurements by laser speckle flowgraphy in pressure-induced ischemic wounds in rats. Ann Plast Surg 64:351–354
17.
go back to reference Stewart CJ, Gallant-Behm CL, Forrester K, Tulip J, Hart DA et al (2006) Kinetics of blood flow during healing of excisional full-thickness skin wounds in pigs as monitored by laser speckle perfusion imaging. Skin Res Technol 12:247–253PubMedCrossRef Stewart CJ, Gallant-Behm CL, Forrester K, Tulip J, Hart DA et al (2006) Kinetics of blood flow during healing of excisional full-thickness skin wounds in pigs as monitored by laser speckle perfusion imaging. Skin Res Technol 12:247–253PubMedCrossRef
18.
19.
go back to reference Barker JH, Kjolseth D, Kim M, Frank J, Bondar I et al (1994) The hairless mouse ear: an in vivo model for studying wound neovascularization. Wound Repair Regen 2:138–143PubMedCrossRef Barker JH, Kjolseth D, Kim M, Frank J, Bondar I et al (1994) The hairless mouse ear: an in vivo model for studying wound neovascularization. Wound Repair Regen 2:138–143PubMedCrossRef
20.
go back to reference Ramirez-San-Juan JC, Ramos-García R, Guizar-Iturbide I, Martínez-Niconoff G, Choi B (2008) Impact of velocity distribution assumption on simplified laser speckle imaging equation. Opt Express 16:3197–3203PubMedCrossRef Ramirez-San-Juan JC, Ramos-García R, Guizar-Iturbide I, Martínez-Niconoff G, Choi B (2008) Impact of velocity distribution assumption on simplified laser speckle imaging equation. Opt Express 16:3197–3203PubMedCrossRef
21.
go back to reference Bandyopadhyay R, Gittings A, Suh S, Dixon P, Durian D (2005) Speckle-visibility spectroscopy: a tool to study time-varying dynamics. Rev Sci Instrum 76:0931101–0931111CrossRef Bandyopadhyay R, Gittings A, Suh S, Dixon P, Durian D (2005) Speckle-visibility spectroscopy: a tool to study time-varying dynamics. Rev Sci Instrum 76:0931101–0931111CrossRef
22.
go back to reference Duncan DD, Kirkpatrick SJ (2008) Can laser speckle flowmetry be made a quantitative tool? J Opt Soc Am A Opt Image Sci Vis 25:2088–2094PubMedCrossRef Duncan DD, Kirkpatrick SJ (2008) Can laser speckle flowmetry be made a quantitative tool? J Opt Soc Am A Opt Image Sci Vis 25:2088–2094PubMedCrossRef
24.
27.
go back to reference Hart WE, Goldbaum M, Côté B, Kube P, Nelson MR (1999) Measurement and classification of retinal vascular tortuosity. Int J Med Inform 53:239–252PubMedCrossRef Hart WE, Goldbaum M, Côté B, Kube P, Nelson MR (1999) Measurement and classification of retinal vascular tortuosity. Int J Med Inform 53:239–252PubMedCrossRef
28.
go back to reference Davis GE, Senger DR (2005) Endothelial extracellular matrix: biosynthesis, remodeling, and functions during vascular morphogenesis and neovessel stabilization. Circ Res 97:1093–1107PubMedCrossRef Davis GE, Senger DR (2005) Endothelial extracellular matrix: biosynthesis, remodeling, and functions during vascular morphogenesis and neovessel stabilization. Circ Res 97:1093–1107PubMedCrossRef
29.
go back to reference Simon-Assmann P, Orend G, Mammadova-Bach E, Spenle C, Lefebvre O (2011) Role of laminins in physiological and pathological angiogenesis. Int J Dev Biol 55:455–465PubMedCrossRef Simon-Assmann P, Orend G, Mammadova-Bach E, Spenle C, Lefebvre O (2011) Role of laminins in physiological and pathological angiogenesis. Int J Dev Biol 55:455–465PubMedCrossRef
30.
go back to reference Pettersson A, Nagy JA, Brown LF, Sundberg C, Morgan E et al (2000) Heterogeneity of the angiogenic response induced in different normal adult tissues by vascular permeability factor/vascular endothelial growth factor. Lab Invest 80:99–115PubMedCrossRef Pettersson A, Nagy JA, Brown LF, Sundberg C, Morgan E et al (2000) Heterogeneity of the angiogenic response induced in different normal adult tissues by vascular permeability factor/vascular endothelial growth factor. Lab Invest 80:99–115PubMedCrossRef
31.
go back to reference Bondar I, Uhl E, Barker JH, Galla TJ, Hammersen F et al (1991) A new model for studying microcirculatory changes during dermal wound healing. Res Exp Med (Berl) 191:379–388CrossRef Bondar I, Uhl E, Barker JH, Galla TJ, Hammersen F et al (1991) A new model for studying microcirculatory changes during dermal wound healing. Res Exp Med (Berl) 191:379–388CrossRef
32.
33.
go back to reference Hu S, Wang LV (2010) Photoacoustic imaging and characterization of the microvasculature. J Biomed Opt 15:011101PubMedCrossRef Hu S, Wang LV (2010) Photoacoustic imaging and characterization of the microvasculature. J Biomed Opt 15:011101PubMedCrossRef
34.
go back to reference Vakoc BJ, Lanning RM, Tyrrell JA, Padera TP, Bartlett LA et al (2009) Three-dimensional microscopy of the tumor microenvironment in vivo using optical frequency domain imaging. Nat Med 15:1219–1223PubMedCrossRef Vakoc BJ, Lanning RM, Tyrrell JA, Padera TP, Bartlett LA et al (2009) Three-dimensional microscopy of the tumor microenvironment in vivo using optical frequency domain imaging. Nat Med 15:1219–1223PubMedCrossRef
35.
go back to reference Cho CH, Sung HK, Kim KT, Cheon HG, Oh GT et al (2006) COMP-angiopoietin-1 promotes wound healing through enhanced angiogenesis, lymphangiogenesis, and blood flow in a diabetic mouse model. Proc Natl Acad Sci USA 103:4946–4951PubMedCrossRef Cho CH, Sung HK, Kim KT, Cheon HG, Oh GT et al (2006) COMP-angiopoietin-1 promotes wound healing through enhanced angiogenesis, lymphangiogenesis, and blood flow in a diabetic mouse model. Proc Natl Acad Sci USA 103:4946–4951PubMedCrossRef
36.
go back to reference Ambrozy E, Waczulikova I, Willfort-Ehringer A, Ehringer H, Koppensteiner R et al (2009) Microcirculation in mixed arterial/venous ulcers and the surrounding skin: clinical study using a laser Doppler perfusion imager and capillary microscopy. Wound Repair Regen 17:19–24PubMedCrossRef Ambrozy E, Waczulikova I, Willfort-Ehringer A, Ehringer H, Koppensteiner R et al (2009) Microcirculation in mixed arterial/venous ulcers and the surrounding skin: clinical study using a laser Doppler perfusion imager and capillary microscopy. Wound Repair Regen 17:19–24PubMedCrossRef
37.
go back to reference Dunn AK, Devor A, Bolay H, Andermann ML, Moskowitz MA et al (2003) Simultaneous imaging of total cerebral hemoglobin concentration, oxygenation, and blood flow during functional activation. Opt Lett 28:28–30PubMedCrossRef Dunn AK, Devor A, Bolay H, Andermann ML, Moskowitz MA et al (2003) Simultaneous imaging of total cerebral hemoglobin concentration, oxygenation, and blood flow during functional activation. Opt Lett 28:28–30PubMedCrossRef
38.
go back to reference Werner S, Grose R (2003) Regulation of wound healing by growth factors and cytokines. Physiol Rev 83:835–870PubMed Werner S, Grose R (2003) Regulation of wound healing by growth factors and cytokines. Physiol Rev 83:835–870PubMed
39.
go back to reference Eming SA, Brachvogel B, Odorisio T, Koch M (2007) Regulation of angiogenesis: wound healing as a model. Prog Histochem Cytochem 42:115–170PubMedCrossRef Eming SA, Brachvogel B, Odorisio T, Koch M (2007) Regulation of angiogenesis: wound healing as a model. Prog Histochem Cytochem 42:115–170PubMedCrossRef
40.
go back to reference Roesken F, Uhl E, Curri SB, Menger MD, Messmer K (2000) Acceleration of wound healing by topical drug delivery via liposomes. Langenbecks Arch Surg 385:42–49PubMedCrossRef Roesken F, Uhl E, Curri SB, Menger MD, Messmer K (2000) Acceleration of wound healing by topical drug delivery via liposomes. Langenbecks Arch Surg 385:42–49PubMedCrossRef
41.
go back to reference Vollmar B, El-Gibaly AM, Scheuer C, Strik MW, Bruch HP et al (2002) Acceleration of cutaneous wound healing by transient p53 inhibition. Lab Invest 82:1063–1071PubMed Vollmar B, El-Gibaly AM, Scheuer C, Strik MW, Bruch HP et al (2002) Acceleration of cutaneous wound healing by transient p53 inhibition. Lab Invest 82:1063–1071PubMed
42.
go back to reference Schafer M, Werner S (2008) Cancer as an overhealing wound: an old hypothesis revisited. Natl Rev Mol Cell Biol 9:628–638CrossRef Schafer M, Werner S (2008) Cancer as an overhealing wound: an old hypothesis revisited. Natl Rev Mol Cell Biol 9:628–638CrossRef
43.
go back to reference Nagy JA, Chang SH, Shih SC, Dvorak AM, Dvorak HF (2010) Heterogeneity of the tumor vasculature. Semin Thromb Hemost 36:321–331PubMedCrossRef Nagy JA, Chang SH, Shih SC, Dvorak AM, Dvorak HF (2010) Heterogeneity of the tumor vasculature. Semin Thromb Hemost 36:321–331PubMedCrossRef
44.
go back to reference Escamez MJ, Garcia M, Larcher F, Meana A, Munoz E et al (2004) An in vivo model of wound healing in genetically modified skin-humanized mice. J Invest Dermatol 123:1182–1191PubMedCrossRef Escamez MJ, Garcia M, Larcher F, Meana A, Munoz E et al (2004) An in vivo model of wound healing in genetically modified skin-humanized mice. J Invest Dermatol 123:1182–1191PubMedCrossRef
45.
go back to reference Apikoglu-Rabus S, Izzettin FV, Turan P, Ercan F (2009) Effect of topical insulin on cutaneous wound healing in rats with or without acute diabetes. Clin Exp Dermatol 35:180–185PubMedCrossRef Apikoglu-Rabus S, Izzettin FV, Turan P, Ercan F (2009) Effect of topical insulin on cutaneous wound healing in rats with or without acute diabetes. Clin Exp Dermatol 35:180–185PubMedCrossRef
46.
go back to reference Tian J, Wong KKY, Ho C-M, Lok C-N, Yu W-Y et al (2007) Topical delivery of silver nanoparticles promotes wound healing. Chem Med Chem 2:129–136PubMed Tian J, Wong KKY, Ho C-M, Lok C-N, Yu W-Y et al (2007) Topical delivery of silver nanoparticles promotes wound healing. Chem Med Chem 2:129–136PubMed
47.
go back to reference Bao P, Kodra A, Tomic-Canic M, Golinko MS, Ehrlich HP et al (2009) The role of vascular endothelial growth factor in wound healing. J Surg Res 153:347–358PubMedCrossRef Bao P, Kodra A, Tomic-Canic M, Golinko MS, Ehrlich HP et al (2009) The role of vascular endothelial growth factor in wound healing. J Surg Res 153:347–358PubMedCrossRef
48.
go back to reference Wu Y, Chen L, Scott PG, Tredget EE (2007) Mesenchymal stem cells enhance wound healing through differentiation and angiogenesis. Stem Cells 25:2648–2659PubMedCrossRef Wu Y, Chen L, Scott PG, Tredget EE (2007) Mesenchymal stem cells enhance wound healing through differentiation and angiogenesis. Stem Cells 25:2648–2659PubMedCrossRef
49.
go back to reference Dvorak HF (1986) Tumors: wounds that do not heal. Similarities between tumor stroma generation and wound healing. N Engl J Med 315:1650–1659PubMedCrossRef Dvorak HF (1986) Tumors: wounds that do not heal. Similarities between tumor stroma generation and wound healing. N Engl J Med 315:1650–1659PubMedCrossRef
50.
go back to reference Jain RK (2005) Normalization of tumor vasculature: an emerging concept in antiangiogenic therapy. Science 307:58–62PubMedCrossRef Jain RK (2005) Normalization of tumor vasculature: an emerging concept in antiangiogenic therapy. Science 307:58–62PubMedCrossRef
51.
go back to reference Dewhirst MW, Richardson R, Cardenas-Navia I, Cao Y (2004) The relationship between the tumor physiologic microenvironment and angiogenesis. Hematol Oncol Clin N Am 18:973–990CrossRef Dewhirst MW, Richardson R, Cardenas-Navia I, Cao Y (2004) The relationship between the tumor physiologic microenvironment and angiogenesis. Hematol Oncol Clin N Am 18:973–990CrossRef
52.
go back to reference Bullitt E, Zeng D, Gerig G, Aylward S, Joshi S et al (2005) Vessel tortuosity and brain tumor malignancy: a blinded study1. Acad Radiol 12:1232–1240PubMedCrossRef Bullitt E, Zeng D, Gerig G, Aylward S, Joshi S et al (2005) Vessel tortuosity and brain tumor malignancy: a blinded study1. Acad Radiol 12:1232–1240PubMedCrossRef
Metadata
Title
In vivo laser speckle imaging reveals microvascular remodeling and hemodynamic changes during wound healing angiogenesis
Authors
Abhishek Rege
Nitish V. Thakor
Kevin Rhie
Arvind P. Pathak
Publication date
01-03-2012
Publisher
Springer Netherlands
Published in
Angiogenesis / Issue 1/2012
Print ISSN: 0969-6970
Electronic ISSN: 1573-7209
DOI
https://doi.org/10.1007/s10456-011-9245-x

Other articles of this Issue 1/2012

Angiogenesis 1/2012 Go to the issue
Live Webinar | 27-06-2024 | 18:00 (CEST)

Keynote webinar | Spotlight on medication adherence

Live: Thursday 27th June 2024, 18:00-19:30 (CEST)

WHO estimates that half of all patients worldwide are non-adherent to their prescribed medication. The consequences of poor adherence can be catastrophic, on both the individual and population level.

Join our expert panel to discover why you need to understand the drivers of non-adherence in your patients, and how you can optimize medication adherence in your clinics to drastically improve patient outcomes.

Prof. Kevin Dolgin
Prof. Florian Limbourg
Prof. Anoop Chauhan
Developed by: Springer Medicine
Obesity Clinical Trial Summary

At a glance: The STEP trials

A round-up of the STEP phase 3 clinical trials evaluating semaglutide for weight loss in people with overweight or obesity.

Developed by: Springer Medicine

Highlights from the ACC 2024 Congress

Year in Review: Pediatric cardiology

Watch Dr. Anne Marie Valente present the last year's highlights in pediatric and congenital heart disease in the official ACC.24 Year in Review session.

Year in Review: Pulmonary vascular disease

The last year's highlights in pulmonary vascular disease are presented by Dr. Jane Leopold in this official video from ACC.24.

Year in Review: Valvular heart disease

Watch Prof. William Zoghbi present the last year's highlights in valvular heart disease from the official ACC.24 Year in Review session.

Year in Review: Heart failure and cardiomyopathies

Watch this official video from ACC.24. Dr. Biykem Bozkurt discusses last year's major advances in heart failure and cardiomyopathies.