Literature DB >> 12556382

Neonatal corneal stromal development in the normal and lumican-deficient mouse.

Julia Song1, Young-Ghee Lee, Jennifer Houston, W Matthew Petroll, Shukti Chakravarti, H Dwight Cavanagh, James V Jester.   

Abstract

PURPOSE: The purpose of this study was to characterize temporally stromal growth and transparency in lumican-deficient and normal neonatal mice.
METHODS: Lumican-deficient mice and CD1 wild-type mice were evaluated by in vivo confocal microscopy through-focusing (CMTF) to quantify stromal and epithelial thickness and corneal light-scattering and by laser scanning CM to determine density of keratocytes from 1 day to 12 weeks after birth.
RESULTS: CD1 corneas showed a rapid loss of light-scattering, decreasing by 50% from day 1 to day 12, that paralleled a 60% decrease in density of keratocytes. By contrast, the stroma demonstrated a marked swelling from day 8 to day 12, followed by thinning at day 14. Compared to corneas from CD1 mice, lumican-deficient corneas showed significantly increased (P < 0.05) light-scattering beginning at week 3 that remained elevated above wild-type levels for the duration of the study. Stromal development was also markedly altered, with thinning detected at week 3, followed by no detectable stromal growth for the duration of the study. Density of keratocytes was significantly increased, but the total cell number was similar compared with that in the wild-type cornea, suggesting no effect on keratocyte differentiation.
CONCLUSIONS: Development of normal neonatal corneal transparency appears related to changes in density of keratocytes. The stroma, however, undergoes a marked swelling and thinning at the time of eyelid opening (days 8-14). In the lumican-deficient mouse, stromal swelling is abolished, indicating that this critical phase in stromal development is lumican dependent and essential for normal stromal growth and maintenance of stromal transparency.

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Year:  2003        PMID: 12556382      PMCID: PMC1853375          DOI: 10.1167/iovs.02-0592

Source DB:  PubMed          Journal:  Invest Ophthalmol Vis Sci        ISSN: 0146-0404            Impact factor:   4.799


  31 in total

1.  An x-ray diffraction investigation of corneal structure in lumican-deficient mice.

Authors:  A J Quantock; K M Meek; S Chakravarti
Journal:  Invest Ophthalmol Vis Sci       Date:  2001-07       Impact factor: 4.799

2.  Two-stage compaction of the secondary avian cornea during development.

Authors:  Veronique Siegler; Andrew J Quantock
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3.  Transketolase gene expression in the cornea is influenced by environmental factors and developmentally controlled events.

Authors:  C M Sax; W T Kays; C Salamon; M M Chervenak; Y S Xu; J Piatigorsky
Journal:  Cornea       Date:  2000-11       Impact factor: 2.651

4.  Measurement of corneal sublayer thickness and transparency in transgenic mice with altered corneal clarity using in vivo confocal microscopy.

Authors:  J V Jester; Y Ghee Lee; J Li; S Chakravarti; J Paul; W M Petroll; H Dwight Cavanagh
Journal:  Vision Res       Date:  2001       Impact factor: 1.886

5.  Proteoglycan changes during restoration of transparency in corneal scars.

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Journal:  Arch Biochem Biophys       Date:  1983-04-15       Impact factor: 4.013

6.  On-line 3-dimensional confocal imaging in vivo.

Authors:  J Li; J V Jester; H D Cavanagh; T D Black; W M Petroll
Journal:  Invest Ophthalmol Vis Sci       Date:  2000-09       Impact factor: 4.799

7.  Quantitative assessment of anteroposterior keratocyte density in the normal rabbit cornea.

Authors:  W M Petroll; K Boettcher; P Barry; H D Cavanagh; J V Jester
Journal:  Cornea       Date:  1995-01       Impact factor: 2.651

8.  Corneal and scleral collagen fiber formation in vitro.

Authors:  D E Birk; M A Lande
Journal:  Biochim Biophys Acta       Date:  1981-10-28

9.  Macular corneal dystrophy: failure to synthesize a mature keratan sulfate proteoglycan.

Authors:  J R Hassell; D A Newsome; J H Krachmer; M M Rodrigues
Journal:  Proc Natl Acad Sci U S A       Date:  1980-06       Impact factor: 11.205

10.  Macular corneal dystrophy. Lack of keratan sulfate in serum and cornea.

Authors:  G K Klintworth; R Meyer; R Dennis; A T Hewitt; E L Stock; M E Lenz; J R Hassell; W J Stark; K E Kuettner; E J Thonar
Journal:  Ophthalmic Paediatr Genet       Date:  1986-12
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  31 in total

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2.  Dimensions and morphology of the cornea in three strains of mice.

Authors:  Johanna Tukler Henriksson; Alison M McDermott; Jan P G Bergmanson
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3.  The Ets transcription factor EHF as a regulator of cornea epithelial cell identity.

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Journal:  J Biol Chem       Date:  2013-10-18       Impact factor: 5.157

4.  Role of SH2-containing tyrosine phosphatase Shp2 in mouse corneal epithelial stratification.

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5.  Differential gene expression patterns of the developing and adult mouse cornea compared to the lens and tendon.

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Review 7.  Regulation of corneal stroma extracellular matrix assembly.

Authors:  Shoujun Chen; Michael J Mienaltowski; David E Birk
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8.  Abnormal corneal endothelial maturation in collagen XII and XIV null mice.

Authors:  Chinda Hemmavanh; Manuel Koch; David E Birk; Edgar M Espana
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Review 9.  Corneal crystallins and the development of cellular transparency.

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Review 10.  Small leucine-rich repeat proteoglycans in corneal inflammation and wound healing.

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