Depth- and direction-dependent changes in solute transport following cross-linking with riboflavin and UVA light in ex vivo porcine cornea

Diffusion is an important mechanism of transport for nutrients and drugs throughout the avascular corneal stroma. The purpose of this study was to investigate the depth- and direction-dependent changes in stromal transport properties and their relationship to changes in collagen structure following...

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Veröffentlicht in:Experimental eye research 2021-04, Vol.205, p.108498-108498, Article 108498
Hauptverfasser: Hepfer, R. Glenn, Chen, Peng, Shi, Changcheng, Rocha, Karolinne M., Waring, George O., Slate, Elizabeth H., Yao, Hai
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container_title Experimental eye research
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creator Hepfer, R. Glenn
Chen, Peng
Shi, Changcheng
Rocha, Karolinne M.
Waring, George O.
Slate, Elizabeth H.
Yao, Hai
description Diffusion is an important mechanism of transport for nutrients and drugs throughout the avascular corneal stroma. The purpose of this study was to investigate the depth- and direction-dependent changes in stromal transport properties and their relationship to changes in collagen structure following ultraviolet A (UVA)-riboflavin induced corneal collagen cross-linking (CXL). After cross-linking in ex vivo porcine eyes, fluorescence recovery after photobleaching (FRAP) was performed to measure fluorescein diffusion in the nasal-temporal (NT) and anterior-posterior (AP) directions at corneal depths of 100, 200, and 300 μm. Second harmonic generation (SHG) imaging was also performed at these three corneal depths to quantify fiber alignment. For additional confirmation, an electrical conductivity method was employed to quantify ion permeability in the AP direction in corneal buttons and immunohistochemistry (IHC) was used to image collagen structure. Cross-linked corneas were compared to a control treatment that received the riboflavin solution without UVA light (SHAM). The results of FRAP revealed that fluorescein diffusivity decreased from 23.39 ± 11.60 μm2/s in the SHAM group to 19.87 ± 10.10 μm2/s in the CXL group. This change was dependent on depth and direction: the decrease was more pronounced in the 100 μm depth (P = 0.0005) and AP direction (P = 0.001) when compared to the effect in deeper locations and in the NT direction, respectively. Conductivity experiments confirmed a decrease in solute transport in the AP direction (P 
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Glenn ; Chen, Peng ; Shi, Changcheng ; Rocha, Karolinne M. ; Waring, George O. ; Slate, Elizabeth H. ; Yao, Hai</creator><creatorcontrib>Hepfer, R. Glenn ; Chen, Peng ; Shi, Changcheng ; Rocha, Karolinne M. ; Waring, George O. ; Slate, Elizabeth H. ; Yao, Hai</creatorcontrib><description>Diffusion is an important mechanism of transport for nutrients and drugs throughout the avascular corneal stroma. The purpose of this study was to investigate the depth- and direction-dependent changes in stromal transport properties and their relationship to changes in collagen structure following ultraviolet A (UVA)-riboflavin induced corneal collagen cross-linking (CXL). After cross-linking in ex vivo porcine eyes, fluorescence recovery after photobleaching (FRAP) was performed to measure fluorescein diffusion in the nasal-temporal (NT) and anterior-posterior (AP) directions at corneal depths of 100, 200, and 300 μm. Second harmonic generation (SHG) imaging was also performed at these three corneal depths to quantify fiber alignment. For additional confirmation, an electrical conductivity method was employed to quantify ion permeability in the AP direction in corneal buttons and immunohistochemistry (IHC) was used to image collagen structure. Cross-linked corneas were compared to a control treatment that received the riboflavin solution without UVA light (SHAM). The results of FRAP revealed that fluorescein diffusivity decreased from 23.39 ± 11.60 μm2/s in the SHAM group to 19.87 ± 10.10 μm2/s in the CXL group. This change was dependent on depth and direction: the decrease was more pronounced in the 100 μm depth (P = 0.0005) and AP direction (P = 0.001) when compared to the effect in deeper locations and in the NT direction, respectively. Conductivity experiments confirmed a decrease in solute transport in the AP direction (P &lt; 0.0001). FRAP also detected diffusional anisotropy in the porcine cornea: the fluorescein diffusivity in the NT direction was higher than the diffusivity in the AP direction. This anisotropy was increased following CXL treatment. Both SHG and IHC revealed a qualitative decrease in collagen crimping following CXL. Analysis of SHG images revealed an increase in coherency in the anterior 200 μm of CXL treated corneas when compared to SHAM treated corneas (P &lt; 0.01). In conclusion, CXL results in a decrease in stromal solute transport, and this decrease is concentrated in the most anterior region and AP direction. Solute transport in the porcine cornea is anisotropic, and an increase in anisotropy with CXL may be explained by a decrease in collagen crimping. •Solute transport decreased in the porcine cornea following CXL.•Decrease in diffusion was depth-dependent; larger effect near anterior surface.•Drug delivery to anterior stroma may be decreased following crosslinking.•Diffusion in the cornea was anisotropic; anisotropy increased following CXL.•Increased diffusional anisotropy was related to decreased collagen crimping.</description><identifier>ISSN: 0014-4835</identifier><identifier>EISSN: 1096-0007</identifier><identifier>DOI: 10.1016/j.exer.2021.108498</identifier><identifier>PMID: 33600810</identifier><language>eng</language><publisher>England: Elsevier Ltd</publisher><subject>Collagen structure ; Conductivity ; Cornea ; Corneal cross-linking ; Diffusion ; Fluorescence recovery after photobleaching (FRAP) ; Second harmonic generation (SHG)</subject><ispartof>Experimental eye research, 2021-04, Vol.205, p.108498-108498, Article 108498</ispartof><rights>2021 Elsevier Ltd</rights><rights>Copyright © 2021 Elsevier Ltd. 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Glenn</creatorcontrib><creatorcontrib>Chen, Peng</creatorcontrib><creatorcontrib>Shi, Changcheng</creatorcontrib><creatorcontrib>Rocha, Karolinne M.</creatorcontrib><creatorcontrib>Waring, George O.</creatorcontrib><creatorcontrib>Slate, Elizabeth H.</creatorcontrib><creatorcontrib>Yao, Hai</creatorcontrib><title>Depth- and direction-dependent changes in solute transport following cross-linking with riboflavin and UVA light in ex vivo porcine cornea</title><title>Experimental eye research</title><addtitle>Exp Eye Res</addtitle><description>Diffusion is an important mechanism of transport for nutrients and drugs throughout the avascular corneal stroma. The purpose of this study was to investigate the depth- and direction-dependent changes in stromal transport properties and their relationship to changes in collagen structure following ultraviolet A (UVA)-riboflavin induced corneal collagen cross-linking (CXL). After cross-linking in ex vivo porcine eyes, fluorescence recovery after photobleaching (FRAP) was performed to measure fluorescein diffusion in the nasal-temporal (NT) and anterior-posterior (AP) directions at corneal depths of 100, 200, and 300 μm. Second harmonic generation (SHG) imaging was also performed at these three corneal depths to quantify fiber alignment. For additional confirmation, an electrical conductivity method was employed to quantify ion permeability in the AP direction in corneal buttons and immunohistochemistry (IHC) was used to image collagen structure. Cross-linked corneas were compared to a control treatment that received the riboflavin solution without UVA light (SHAM). The results of FRAP revealed that fluorescein diffusivity decreased from 23.39 ± 11.60 μm2/s in the SHAM group to 19.87 ± 10.10 μm2/s in the CXL group. This change was dependent on depth and direction: the decrease was more pronounced in the 100 μm depth (P = 0.0005) and AP direction (P = 0.001) when compared to the effect in deeper locations and in the NT direction, respectively. Conductivity experiments confirmed a decrease in solute transport in the AP direction (P &lt; 0.0001). FRAP also detected diffusional anisotropy in the porcine cornea: the fluorescein diffusivity in the NT direction was higher than the diffusivity in the AP direction. This anisotropy was increased following CXL treatment. Both SHG and IHC revealed a qualitative decrease in collagen crimping following CXL. Analysis of SHG images revealed an increase in coherency in the anterior 200 μm of CXL treated corneas when compared to SHAM treated corneas (P &lt; 0.01). In conclusion, CXL results in a decrease in stromal solute transport, and this decrease is concentrated in the most anterior region and AP direction. Solute transport in the porcine cornea is anisotropic, and an increase in anisotropy with CXL may be explained by a decrease in collagen crimping. •Solute transport decreased in the porcine cornea following CXL.•Decrease in diffusion was depth-dependent; larger effect near anterior surface.•Drug delivery to anterior stroma may be decreased following crosslinking.•Diffusion in the cornea was anisotropic; anisotropy increased following CXL.•Increased diffusional anisotropy was related to decreased collagen crimping.</description><subject>Collagen structure</subject><subject>Conductivity</subject><subject>Cornea</subject><subject>Corneal cross-linking</subject><subject>Diffusion</subject><subject>Fluorescence recovery after photobleaching (FRAP)</subject><subject>Second harmonic generation (SHG)</subject><issn>0014-4835</issn><issn>1096-0007</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2021</creationdate><recordtype>article</recordtype><recordid>eNp9kc2OFCEURonROO3oC7gwLN1UCwVNF4mbyfibTOLGcUsouHTT0lAC3TO-gk8tZY0uXRFuvu8k9x6EXlKypoSKN4c13ENe96SnbTBwOTxCK0qk6Agh28doRQjlHR_Y5gI9K-XQpoxv-VN0wZggZKBkhX69g6nuO6yjxdZnMNWn2FmYIFqIFZu9jjso2EdcUjhVwDXrWKaUK3YphHTn4w6bnErpgo_f59-dr3uc_Zhc0OdWnNm3365w8Lt9nUlwj8_-nHCjGB8Bm5Qj6OfoidOhwIuH9xLdfnj_9fpTd_Pl4-frq5vOsI2onTNGaMmllkwYy8cRmDQEQEtwQmtimeDOUsqBb-2WOQejYG5D3MgGNvSCXaLXC3fK6ccJSlVHXwyEoCOkU1E9l1Ru-oEOLdov0T8LZnBqyv6o809FiZodqIOaHajZgVoctNKrB_5pPIL9V_l79BZ4uwSgbXn2rV6Mh2hgEaBs8v_j_waMZJtw</recordid><startdate>202104</startdate><enddate>202104</enddate><creator>Hepfer, R. 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Glenn ; Chen, Peng ; Shi, Changcheng ; Rocha, Karolinne M. ; Waring, George O. ; Slate, Elizabeth H. ; Yao, Hai</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-LOGICAL-c356t-fcc6a949a936cd4bbe39c0eea9ef6aa0d364fd114e47d73ffeb63f50fb3838263</frbrgroupid><rsrctype>articles</rsrctype><prefilter>articles</prefilter><language>eng</language><creationdate>2021</creationdate><topic>Collagen structure</topic><topic>Conductivity</topic><topic>Cornea</topic><topic>Corneal cross-linking</topic><topic>Diffusion</topic><topic>Fluorescence recovery after photobleaching (FRAP)</topic><topic>Second harmonic generation (SHG)</topic><toplevel>peer_reviewed</toplevel><toplevel>online_resources</toplevel><creatorcontrib>Hepfer, R. Glenn</creatorcontrib><creatorcontrib>Chen, Peng</creatorcontrib><creatorcontrib>Shi, Changcheng</creatorcontrib><creatorcontrib>Rocha, Karolinne M.</creatorcontrib><creatorcontrib>Waring, George O.</creatorcontrib><creatorcontrib>Slate, Elizabeth H.</creatorcontrib><creatorcontrib>Yao, Hai</creatorcontrib><collection>PubMed</collection><collection>CrossRef</collection><collection>MEDLINE - Academic</collection><jtitle>Experimental eye research</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Hepfer, R. Glenn</au><au>Chen, Peng</au><au>Shi, Changcheng</au><au>Rocha, Karolinne M.</au><au>Waring, George O.</au><au>Slate, Elizabeth H.</au><au>Yao, Hai</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Depth- and direction-dependent changes in solute transport following cross-linking with riboflavin and UVA light in ex vivo porcine cornea</atitle><jtitle>Experimental eye research</jtitle><addtitle>Exp Eye Res</addtitle><date>2021-04</date><risdate>2021</risdate><volume>205</volume><spage>108498</spage><epage>108498</epage><pages>108498-108498</pages><artnum>108498</artnum><issn>0014-4835</issn><eissn>1096-0007</eissn><abstract>Diffusion is an important mechanism of transport for nutrients and drugs throughout the avascular corneal stroma. The purpose of this study was to investigate the depth- and direction-dependent changes in stromal transport properties and their relationship to changes in collagen structure following ultraviolet A (UVA)-riboflavin induced corneal collagen cross-linking (CXL). After cross-linking in ex vivo porcine eyes, fluorescence recovery after photobleaching (FRAP) was performed to measure fluorescein diffusion in the nasal-temporal (NT) and anterior-posterior (AP) directions at corneal depths of 100, 200, and 300 μm. Second harmonic generation (SHG) imaging was also performed at these three corneal depths to quantify fiber alignment. For additional confirmation, an electrical conductivity method was employed to quantify ion permeability in the AP direction in corneal buttons and immunohistochemistry (IHC) was used to image collagen structure. Cross-linked corneas were compared to a control treatment that received the riboflavin solution without UVA light (SHAM). The results of FRAP revealed that fluorescein diffusivity decreased from 23.39 ± 11.60 μm2/s in the SHAM group to 19.87 ± 10.10 μm2/s in the CXL group. This change was dependent on depth and direction: the decrease was more pronounced in the 100 μm depth (P = 0.0005) and AP direction (P = 0.001) when compared to the effect in deeper locations and in the NT direction, respectively. Conductivity experiments confirmed a decrease in solute transport in the AP direction (P &lt; 0.0001). FRAP also detected diffusional anisotropy in the porcine cornea: the fluorescein diffusivity in the NT direction was higher than the diffusivity in the AP direction. This anisotropy was increased following CXL treatment. Both SHG and IHC revealed a qualitative decrease in collagen crimping following CXL. Analysis of SHG images revealed an increase in coherency in the anterior 200 μm of CXL treated corneas when compared to SHAM treated corneas (P &lt; 0.01). In conclusion, CXL results in a decrease in stromal solute transport, and this decrease is concentrated in the most anterior region and AP direction. Solute transport in the porcine cornea is anisotropic, and an increase in anisotropy with CXL may be explained by a decrease in collagen crimping. •Solute transport decreased in the porcine cornea following CXL.•Decrease in diffusion was depth-dependent; larger effect near anterior surface.•Drug delivery to anterior stroma may be decreased following crosslinking.•Diffusion in the cornea was anisotropic; anisotropy increased following CXL.•Increased diffusional anisotropy was related to decreased collagen crimping.</abstract><cop>England</cop><pub>Elsevier Ltd</pub><pmid>33600810</pmid><doi>10.1016/j.exer.2021.108498</doi><tpages>1</tpages><orcidid>https://orcid.org/0000-0002-8879-4794</orcidid></addata></record>
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subjects Collagen structure
Conductivity
Cornea
Corneal cross-linking
Diffusion
Fluorescence recovery after photobleaching (FRAP)
Second harmonic generation (SHG)
title Depth- and direction-dependent changes in solute transport following cross-linking with riboflavin and UVA light in ex vivo porcine cornea
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