Introduction: This review aims to summarise the role of different cells, genes, proteins and lipid in regulating cornea epithelial-stromal homeostasis. Methods: We performed an Entrez PubMed literature search using keywords “human,” “cornea,” “epithelial,” “stromal,” “homeostasis,” “fibrosis response,” and “pathogenesis” on 24th of September 2019, resulting in 35 papers, of which 18 were chosen after filtering for “English language” and “published within 10 years” as well as curation for relevance by the authors. Results: The 18 selected papers showed that corneal epithelial cells, fibroblasts and telocytes, together with genes such as Klf4, Pax6 and Id found in the cells, play important roles in achieving homeostasis to maintain corneal integrity and transparency. Proteins classified as pro-fibrotic ligands and anti-fibrotic ligands are responsible for regulating cornea stromal fibrosis and extracellular matrix deposition, thus regulators of scar formation during wound healing. Anti-inflammatory ligands and wound repairing ligands are critical in eliciting protective inflammation and promoting epithelial healing, respectively. Protein receptors located on cellular membrane play a role in maintaining intercellular connections as well as corneal hydration. Discussion/Conclusion: These studies prompt development of novel therapeutic strategies such as tear drops or ointments that target certain proteins to maintain corneal homeostasis. However, more in vitro and in vivo studies are required to prove the effectiveness of exogenous administration of molecules in improving healing outcome. Hence, future investigations of the molecular pathways highlighted in this review will reveal novel therapeutic tools such as gene or cell therapy to treat corneal diseases.

1.
Lu
L
,
Reinach
PS
,
Kao
WW
.
Corneal epithelial wound healing
.
Exp Biol Med (Maywood)
.
2001
Jul
;
226
(
7
):
653
64
.
[PubMed]
1535-3702
2.
Mastropasqua
L
,
Massaro-Giordano
G
,
Nubile
M
,
Sacchetti
M
.
Understanding the Pathogenesis of Neurotrophic Keratitis: The Role of Corneal Nerves
.
J Cell Physiol
.
2017
Apr
;
232
(
4
):
717
24
.
[PubMed]
0021-9541
3.
Dua
HS
,
Said
DG
,
Messmer
EM
,
Rolando
M
,
Benitez-Del-Castillo
JM
,
Hossain
PN
, et al.
Neurotrophic keratopathy
.
Prog Retin Eye Res
.
2018
Sep
;
66
:
107
31
.
[PubMed]
1350-9462
4.
Medeiros
CS
,
Marino
GK
,
Santhiago
MR
,
Wilson
SE
.
The Corneal Basement Membranes and Stromal Fibrosis
.
Invest Ophthalmol Vis Sci
.
2018
Aug
;
59
(
10
):
4044
53
.
[PubMed]
0146-0404
5.
Meek
KM
,
Leonard
DW
,
Connon
CJ
,
Dennis
S
,
Khan
S
.
Transparency, swelling and scarring in the corneal stroma
.
Eye (Lond)
.
2003
Nov
;
17
(
8
):
927
36
.
[PubMed]
0950-222X
6.
Ouyang
H
,
Xue
Y
,
Lin
Y
,
Zhang
X
,
Xi
L
,
Patel
S
, et al.
WNT7A and PAX6 define corneal epithelium homeostasis and pathogenesis
.
Nature
.
2014
Jul
;
511
(
7509
):
358
61
.
[PubMed]
0028-0836
7.
Frank
MH
,
Frank
NY
.
Restoring the cornea from limbal stem cells
.
Regen Med
.
2015
;
10
(
1
):
1
4
.
[PubMed]
1746-0751
8.
Reins
RY
,
Courson
J
,
Lema
C
,
Redfern
RL
.
MyD88 contribution to ocular surface homeostasis
.
PLoS One
.
2017
Aug
;
12
(
8
):
e0182153
.
[PubMed]
1932-6203
9.
Suvas
S
.
Role of Substance P Neuropeptide in Inflammation, Wound Healing, and Tissue Homeostasis
.
J Immunol
.
2017
Sep
;
199
(
5
):
1543
52
.
[PubMed]
0022-1767
10.
Wilson
SE
,
Liu
JJ
,
Mohan
RR
.
Stromal-epithelial interactions in the cornea
.
Prog Retin Eye Res
.
1999
May
;
18
(
3
):
293
309
.
[PubMed]
1350-9462
11.
Gabison
EE
,
Huet
E
,
Baudouin
C
,
Menashi
S
.
Direct epithelial-stromal interaction in corneal wound healing: role of EMMPRIN/CD147 in MMPs induction and beyond
.
Prog Retin Eye Res
.
2009
Jan
;
28
(
1
):
19
33
.
[PubMed]
1350-9462
12.
Kobayashi
T
,
Shiraishi
A
,
Hara
Y
,
Kadota
Y
,
Yang
L
,
Inoue
T
, et al.
Stromal-epithelial interaction study: the effect of corneal epithelial cells on growth factor expression in stromal cells using organotypic culture model
.
Exp Eye Res
.
2015
Jun
;
135
:
109
17
.
[PubMed]
0014-4835
13.
McClintock
JL
,
Ceresa
BP
.
Transforming growth factor-{alpha} enhances corneal epithelial cell migration by promoting EGFR recycling
.
Invest Ophthalmol Vis Sci
.
2010
Jul
;
51
(
7
):
3455
61
.
[PubMed]
0146-0404
14.
Reneker
LW
,
Bloch
A
,
Xie
L
,
Overbeek
PA
,
Ash
JD
.
Induction of corneal myofibroblasts by lens-derived transforming growth factor beta1 (TGFbeta1): a transgenic mouse model
.
Brain Res Bull
.
2010
Feb
;
81
(
2-3
):
287
96
.
[PubMed]
0361-9230
15.
Chang
Y
,
Li
C
,
Gan
L
,
Li
H
,
Guo
Z
.
Telocytes in the Spleen
.
PLoS One
.
2015
Sep
;
10
(
9
):
e0138851
.
[PubMed]
1932-6203
16.
Loyer
X
,
Zlatanova
I
,
Devue
C
,
Yin
M
,
Howangyin
KY
,
Klaihmon
P
, et al.
Intra-Cardiac Release of Extracellular Vesicles Shapes Inflammation Following Myocardial Infarction
.
Circ Res
.
2018
Jun
;
123
(
1
):
100
6
.
[PubMed]
0009-7330
17.
Torricelli
AA
,
Singh
V
,
Santhiago
MR
,
Wilson
SE
.
The corneal epithelial basement membrane: structure, function, and disease
.
Invest Ophthalmol Vis Sci
.
2013
Sep
;
54
(
9
):
6390
400
.
[PubMed]
0146-0404
18.
Swamynathan
SK
,
Katz
JP
,
Kaestner
KH
,
Ashery-Padan
R
,
Crawford
MA
,
Piatigorsky
J
.
Conditional deletion of the mouse Klf4 gene results in corneal epithelial fragility, stromal edema, and loss of conjunctival goblet cells
.
Mol Cell Biol
.
2007
Jan
;
27
(
1
):
182
94
.
[PubMed]
0270-7306
19.
Delp
EE
,
Swamynathan
S
,
Kao
WW
,
Swamynathan
SK
.
Spatiotemporally Regulated Ablation of Klf4 in Adult Mouse Corneal Epithelial Cells Results in Altered Epithelial Cell Identity and Disrupted Homeostasis
.
Invest Ophthalmol Vis Sci
.
2015
Jun
;
56
(
6
):
3549
58
.
[PubMed]
0146-0404
20.
Remez
LA
,
Onishi
A
,
Menuchin-Lasowski
Y
,
Biran
A
,
Blackshaw
S
,
Wahlin
KJ
, et al.
Pax6 is essential for the generation of late-born retinal neurons and for inhibition of photoreceptor-fate during late stages of retinogenesis
.
Dev Biol
.
2017
Dec
;
432
(
1
):
140
50
.
[PubMed]
0012-1606
21.
Zhang
R
,
Linpeng
S
,
Wei
X
,
Li
H
,
Huang
Y
,
Guo
J
, et al.
Novel variants in PAX6 gene caused congenital aniridia in two Chinese families
.
Eye (Lond)
.
2017
Jun
;
31
(
6
):
956
61
.
[PubMed]
0950-222X
22.
Laggner
M
,
Pollreisz
A
,
Schmidinger
G
,
Schmidt-Erfurth
U
,
Chen
YT
.
Autophagy mediates cell cycle response by regulating nucleocytoplasmic transport of PAX6 in limbal stem cells under ultraviolet-A stress
.
PLoS One
.
2017
Jul
;
12
(
7
):
e0180868
.
[PubMed]
1932-6203
23.
Mort
RL
,
Bentley
AJ
,
Martin
FL
,
Collinson
JM
,
Douvaras
P
,
Hill
RE
, et al.
Effects of aberrant Pax6 gene dosage on mouse corneal pathophysiology and corneal epithelial homeostasis
.
PLoS One
.
2011
;
6
(
12
):
e28895
.
[PubMed]
1932-6203
24.
Norton
JD
.
ID helix-loop-helix proteins in cell growth, differentiation and tumorigenesis
.
J Cell Sci
.
2000
Nov
;
113
(
Pt 22
):
3897
905
.
[PubMed]
0021-9533
25.
Mohan
RR
,
Morgan
BR
,
Anumanthan
G
,
Sharma
A
,
Chaurasia
SS
,
Rieger
FG
.
Characterization of Inhibitor of differentiation (Id) proteins in human cornea
.
Exp Eye Res
.
2016
May
;
146
:
145
53
.
[PubMed]
0014-4835
26.
Tandon
A
,
Sharma
A
,
Rodier
JT
,
Klibanov
AM
,
Rieger
FG
,
Mohan
RR
.
BMP7 gene transfer via gold nanoparticles into stroma inhibits corneal fibrosis in vivo
.
PLoS One
.
2013
Jun
;
8
(
6
):
e66434
.
[PubMed]
1932-6203
27.
Jester
JV
,
Barry-Lane
PA
,
Petroll
WM
,
Olsen
DR
,
Cavanagh
HD
.
Inhibition of corneal fibrosis by topical application of blocking antibodies to TGF beta in the rabbit
.
Cornea
.
1997
Mar
;
16
(
2
):
177
87
.
[PubMed]
0277-3740
28.
Gibson
DJ
,
Pi
L
,
Sriram
S
,
Mao
C
,
Petersen
BE
,
Scott
EW
, et al.
Conditional knockout of CTGF affects corneal wound healing
.
Invest Ophthalmol Vis Sci
.
2014
Apr
;
55
(
4
):
2062
70
.
[PubMed]
0146-0404
29.
van Setten
GB
,
Trost
A
,
Schrödl
F
,
Kaser-Eichberger
A
,
Bogner
B
,
van Setten
M
, et al.
Immunohistochemical Detection of CTGF in the Human Eye
.
Curr Eye Res
.
2016
Dec
;
41
(
12
):
1571
9
.
[PubMed]
0271-3683
30.
Chang
Y
,
Wu
XY
.
JNK1/2 siRNA inhibits transforming-growth factor-beta1-induced connective tissue growth factor expression and fibrotic function in THSFs
.
Mol Cell Biochem
.
2010
Feb
;
335
(
1-2
):
83
9
.
[PubMed]
0300-8177
31.
Imamura
R
,
Matsumoto
K
.
Hepatocyte growth factor in physiology and infectious diseases
.
Cytokine
.
2017
Oct
;
98
:
97
106
.
[PubMed]
1043-4666
32.
Nita
I
,
Hostettler
K
,
Tamo
L
,
Medová
M
,
Bombaci
G
,
Zhong
J
, et al.
Hepatocyte growth factor secreted by bone marrow stem cell reduce ER stress and improves repair in alveolar epithelial II cells
.
Sci Rep
.
2017
Feb
;
7
(
1
):
41901
.
[PubMed]
2045-2322
33.
Abd-Elgawad
H
,
Abu-Elsaad
N
,
El-Karef
A
,
Ibrahim
T
.
Piceatannol increases the expression of hepatocyte growth factor and IL-10 thereby protecting hepatocytes in thioacetamide-induced liver fibrosis
.
Can J Physiol Pharmacol
.
2016
Jul
;
94
(
7
):
779
87
.
[PubMed]
0008-4212
34.
Yi
X
,
Li
X
,
Zhou
Y
,
Ren
S
,
Wan
W
,
Feng
G
, et al.
Hepatocyte growth factor regulates the TGF-β1-induced proliferation, differentiation and secretory function of cardiac fibroblasts
.
Int J Mol Med
.
2014
Aug
;
34
(
2
):
381
90
.
[PubMed]
1107-3756
35.
Miyagi
H
,
Jalilian
I
,
Murphy
CJ
,
Thomasy
SM
.
Modulation of human corneal stromal cell differentiation by hepatocyte growth factor and substratum compliance
.
Exp Eye Res
.
2018
Nov
;
176
:
235
42
.
[PubMed]
0014-4835
36.
Bu
SC
,
Kuijer
R
,
van der Worp
RJ
,
van Putten
SM
,
Wouters
O
,
Li
XR
, et al.
Substrate Elastic Modulus Regulates the Morphology, Focal Adhesions, and α-Smooth Muscle Actin Expression of Retinal Müller Cells
.
Invest Ophthalmol Vis Sci
.
2015
Sep
;
56
(
10
):
5974
82
.
[PubMed]
0146-0404
37.
Yan
T
,
Sun
R
,
Deng
H
,
Tan
B
,
Ao
N
.
The morphological and biomechanical changes of keratocytes cultured on modified p (HEMA-MMA) hydrogel studied by AFM
.
Scanning
.
2009
Nov-Dec
;
31
(
6
):
246
52
.
[PubMed]
1932-8745
38.
Shohat
M
,
Ben-Meir
D
,
Lavi
S
.
Protein phosphatase magnesium dependent 1A (PPM1A) plays a role in the differentiation and survival processes of nerve cells
.
PLoS One
.
2012
;
7
(
2
):
e32438
.
[PubMed]
1932-6203
39.
Lin
X
,
Duan
X
,
Liang
YY
,
Su
Y
,
Wrighton
KH
,
Long
J
, et al.
PPM1A Functions as a Smad Phosphatase to Terminate TGFβ Signaling
.
Cell
.
2016
Sep
;
166
(
6
):
1597
.
[PubMed]
0092-8674
40.
Dvashi
Z
,
Sar Shalom
H
,
Shohat
M
,
Ben-Meir
D
,
Ferber
S
,
Satchi-Fainaro
R
, et al.
Protein phosphatase magnesium dependent 1A governs the wound healing-inflammation-angiogenesis cross talk on injury
.
Am J Pathol
.
2014
Nov
;
184
(
11
):
2936
50
.
[PubMed]
0002-9440
41.
Swamynathan
S
,
Buela
KA
,
Kinchington
P
,
Lathrop
KL
,
Misawa
H
,
Hendricks
RL
, et al.
Klf4 regulates the expression of Slurp1, which functions as an immunomodulatory peptide in the mouse cornea
.
Invest Ophthalmol Vis Sci
.
2012
Dec
;
53
(
13
):
8433
46
.
[PubMed]
0146-0404
42.
Radiono
S
,
Pramono
ZA
,
Oh
GG
,
Surana
U
,
Widiyani
S
,
Danarti
R
.
Identification of novel homozygous SLURP1 mutation in a Javanese family with Mal de Meleda
.
Int J Dermatol
.
2017
Nov
;
56
(
11
):
1161
8
.
[PubMed]
0011-9059
43.
Swamynathan
S
,
Swamynathan
SK
.
SLURP-1 modulates corneal homeostasis by serving as a soluble scavenger of urokinase-type plasminogen activator
.
Invest Ophthalmol Vis Sci
.
2014
Aug
;
55
(
10
):
6251
61
.
[PubMed]
0146-0404
44.
Loughner
CL
,
Bruford
EA
,
McAndrews
MS
,
Delp
EE
,
Swamynathan
S
,
Swamynathan
SK
.
Organization, evolution and functions of the human and mouse Ly6/uPAR family genes
.
Hum Genomics
.
2016
Apr
;
10
(
1
):
10
.
[PubMed]
1473-9542
45.
Maugeri
G
,
D’Amico
AG
,
Gagliano
C
,
Saccone
S
,
Federico
C
,
Cavallaro
S
, et al.
VIP Family Members Prevent Outer Blood Retinal Barrier Damage in a Model of Diabetic Macular Edema
.
J Cell Physiol
.
2017
May
;
232
(
5
):
1079
85
.
[PubMed]
0021-9541
46.
Jiang
X
,
McClellan
SA
,
Barrett
RP
,
Berger
EA
,
Zhang
Y
,
Hazlett
LD
.
VIP and growth factors in the infected cornea
.
Invest Ophthalmol Vis Sci
.
2011
Aug
;
52
(
9
):
6154
61
.
[PubMed]
0146-0404
47.
Rada
JA
,
Cornuet
PK
,
Hassell
JR
.
Regulation of corneal collagen fibrillogenesis in vitro by corneal proteoglycan (lumican and decorin) core proteins
.
Exp Eye Res
.
1993
Jun
;
56
(
6
):
635
48
.
[PubMed]
0014-4835
48.
Chakravarti
S
,
Petroll
WM
,
Hassell
JR
,
Jester
JV
,
Lass
JH
,
Paul
J
, et al.
Corneal opacity in lumican-null mice: defects in collagen fibril structure and packing in the posterior stroma
.
Invest Ophthalmol Vis Sci
.
2000
Oct
;
41
(
11
):
3365
73
.
[PubMed]
0146-0404
49.
Shao
H
,
Chaerkady
R
,
Chen
S
,
Pinto
SM
,
Sharma
R
,
Delanghe
B
, et al.
Proteome profiling of wild type and lumican-deficient mouse corneas
.
J Proteomics
.
2011
Sep
;
74
(
10
):
1895
905
.
[PubMed]
1874-3919
50.
Chan
MF
,
Li
J
,
Bertrand
A
,
Casbon
AJ
,
Lin
JH
,
Maltseva
I
, et al.
Protective effects of matrix metalloproteinase-12 following corneal injury
.
J Cell Sci
.
2013
Sep
;
126
(
Pt 17
):
3948
60
.
[PubMed]
0021-9533
51.
Wolf
M
,
Maltseva
I
,
Clay
SM
,
Pan
P
,
Gajjala
A
,
Chan
MF
.
Effects of MMP12 on cell motility and inflammation during corneal epithelial repair
.
Exp Eye Res
.
2017
Jul
;
160
:
11
20
.
[PubMed]
0014-4835
52.
Imanishi
J
,
Kamiyama
K
,
Iguchi
I
,
Kita
M
,
Sotozono
C
,
Kinoshita
S
.
Growth factors: importance in wound healing and maintenance of transparency of the cornea
.
Prog Retin Eye Res
.
2000
Jan
;
19
(
1
):
113
29
.
[PubMed]
1350-9462
53.
Etheredge
L
,
Kane
BP
,
Hassell
JR
.
The effect of growth factor signaling on keratocytes in vitro and its relationship to the phases of stromal wound repair
.
Invest Ophthalmol Vis Sci
.
2009
Jul
;
50
(
7
):
3128
36
.
[PubMed]
0146-0404
54.
Gallego-Muñoz
P
,
Ibares-Frías
L
,
Garrote
JA
,
Valsero-Blanco
MC
,
Cantalapiedra-Rodríguez
R
,
Merayo-Lloves
J
, et al.
Human corneal fibroblast migration and extracellular matrix synthesis during stromal repair: role played by platelet-derived growth factor-BB, basic fibroblast growth factor, and transforming growth factor-β1
.
J Tissue Eng Regen Med
.
2018
Feb
;
12
(
2
):
e737
46
.
[PubMed]
1932-6254
55.
Kang
GM
,
Ko
MK
.
Morphological characteristics and intercellular connections of corneal keratocytes
.
Korean J Ophthalmol
.
2005
Sep
;
19
(
3
):
213
8
.
[PubMed]
1011-8942
56.
Schey
KL
,
Petrova
RS
,
Gletten
RB
,
Donaldson
PJ
.
The Role of Aquaporins in Ocular Lens Homeostasis
.
Int J Mol Sci
.
2017
Dec
;
18
(
12
):
E2693
.
[PubMed]
1661-6596
57.
Kumari
SS
,
Varadaraj
M
,
Yerramilli
VS
,
Menon
AG
,
Varadaraj
K
.
Spatial expression of aquaporin 5 in mammalian cornea and lens, and regulation of its localization by phosphokinase A
.
Mol Vis
.
2012
;
18
:
957
67
.
[PubMed]
1090-0535
58.
Verkman
AS
,
Ruiz-Ederra
J
,
Levin
MH
.
Functions of aquaporins in the eye
.
Prog Retin Eye Res
.
2008
Jul
;
27
(
4
):
420
33
.
[PubMed]
1350-9462
59.
Bertin
S
,
de Jong
PR
,
Jefferies
WA
,
Raz
E
.
Novel immune function for the TRPV1 channel in T lymphocytes
.
Channels (Austin)
.
2014
;
8
(
6
):
479
80
.
[PubMed]
1933-6950
60.
Yang
Y
,
Yang
H
,
Wang
Z
,
Mergler
S
,
Wolosin
JM
,
Reinach
PS
.
Functional TRPV1 expression in human corneal fibroblasts
.
Exp Eye Res
.
2013
Feb
;
107
:
121
9
.
[PubMed]
0014-4835
61.
Becker
J
,
Salla
S
,
Dohmen
U
,
Redbrake
C
,
Reim
M
.
Explorative study of interleukin levels in the human cornea
.
Graefes Arch Clin Exp Ophthalmol
.
1995
Dec
;
233
(
12
):
766
71
.
[PubMed]
0721-832X
62.
Modell
H
,
Cliff
W
,
Michael
J
,
McFarland
J
,
Wenderoth
MP
,
Wright
A
.
A physiologist’s view of homeostasis
.
Adv Physiol Educ
.
2015
Dec
;
39
(
4
):
259
66
.
[PubMed]
1043-4046
63.
Castro
BM
,
Prieto
M
,
Silva
LC
.
Ceramide: a simple sphingolipid with unique biophysical properties
.
Prog Lipid Res
.
2014
Apr
;
54
:
53
67
.
[PubMed]
0163-7827
64.
Rizvi
F
,
Heimann
T
,
Herrnreiter
A
,
O’Brien
WJ
.
Mitochondrial dysfunction links ceramide activated HRK expression and cell death
.
PLoS One
.
2011
Mar
;
6
(
3
):
e18137
.
[PubMed]
1932-6203
65.
Gurzov
EN
,
Ortis
F
,
Cunha
DA
,
Gosset
G
,
Li
M
,
Cardozo
AK
, et al.
Signaling by IL-1beta+IFN-gamma and ER stress converge on DP5/Hrk activation: a novel mechanism for pancreatic beta-cell apoptosis
.
Cell Death Differ
.
2009
Nov
;
16
(
11
):
1539
50
.
[PubMed]
1350-9047
66.
Naegele
J
,
Lombroso
PJ
.
Development of the cerebral cortex: VIII. Apoptosis: neuronal Hari-Kari
.
J Am Acad Child Adolesc Psychiatry
.
1998
Aug
;
37
(
8
):
890
2
.
[PubMed]
0890-8567
67.
Whitcher
JP
,
Srinivasan
M
,
Upadhyay
MP
.
Corneal blindness: a global perspective
.
Bull World Health Organ
.
2001
;
79
(
3
):
214
21
.
[PubMed]
0042-9686
68.
Vashist
P
,
Gupta
N
,
Tandon
R
,
Gupta
SK
,
Dwivedi
S
,
Mani
K
.
Population-based assessment of vision-related quality of life in corneal disease: results from the CORE study
.
Br J Ophthalmol
.
2016
May
;
100
(
5
):
588
93
.
[PubMed]
0007-1161
69.
Moore
BA
,
Teixeira
LB
,
Sponsel
WE
,
Dubielzig
RR
.
The consequences of avian ocular trauma: histopathological evidence and implications of acute and chronic disease
.
Vet Ophthalmol
.
2017
Nov
;
20
(
6
):
496
504
.
[PubMed]
1463-5216
70.
Blalock
TD
,
Duncan
MR
,
Varela
JC
,
Goldstein
MH
,
Tuli
SS
,
Grotendorst
GR
, et al.
Connective tissue growth factor expression and action in human corneal fibroblast cultures and rat corneas after photorefractive keratectomy
.
Invest Ophthalmol Vis Sci
.
2003
May
;
44
(
5
):
1879
87
.
[PubMed]
0146-0404
71.
Miyagi
H
,
Thomasy
SM
,
Russell
P
,
Murphy
CJ
.
The role of hepatocyte growth factor in corneal wound healing
.
Exp Eye Res
.
2018
Jan
;
166
:
49
55
.
[PubMed]
0014-4835
72.
Lambiase
A
,
Manni
L
,
Bonini
S
,
Rama
P
,
Micera
A
,
Aloe
L
.
Nerve growth factor promotes corneal healing: structural, biochemical, and molecular analyses of rat and human corneas
.
Invest Ophthalmol Vis Sci
.
2000
Apr
;
41
(
5
):
1063
9
.
[PubMed]
0146-0404
73.
Sacchetti
M
,
Lambiase
A
,
Schmidl
D
,
Schmetterer
L
,
Ferrari
M
,
Mantelli
F
, et al.
Effect of recombinant human nerve growth factor eye drops in patients with dry eye: a phase IIa, open label, multiple-dose study
.
Br J Ophthalmol
.
2020
Jan
;
104
(
1
):
127
35
.
[PubMed]
1468-2079
74.
Liu
MM
,
Tuo
J
,
Chan
CC
.
Gene therapy for ocular diseases
.
Br J Ophthalmol
.
2011
May
;
95
(
5
):
604
12
.
[PubMed]
0007-1161
75.
Hsu
CC
,
Peng
CH
,
Hung
KH
,
Lee
YY
,
Lin
TC
,
Jang
SF
, et al.
Stem Cell Therapy for Corneal Regeneration Medicine and Contemporary Nanomedicine for Corneal Disorders
.
Cell Transplant
.
2015
;
24
(
10
):
1915
30
.
[PubMed]
0963-6897
76.
Kwok
SS
,
Shih
KC
,
Bu
Y
,
Lo
AC
,
Chan
TC
,
Lai
JS
, et al.
Systematic Review on Therapeutic Strategies to Minimize Corneal Stromal Scarring After Injury
.
Eye Contact Lens
.
2019
Nov
;
45
(
6
):
347
55
.
[PubMed]
1542-2321
77.
Marini M, Mencucci R, Rosa I, Favuzza E, Guasti D, Ibba-Manneschi L, et al. Telocytes in normal and keratoconic human cornea: an immunohistochemical and transmission electron microscopy study. J Cell Mol Med. 2017 Dec;21(12):3602–3611.
78.
Berthaut A, Mirshahi P, Benabbou N, Azzazene D, Bordu C, Therwath A, et al. Vascular endothelial growth factor receptor-1 (VEGFR-1) expression in human corneal fibroblast decreased with age. Mol Vis. 2009 Sep 29;15:1997–2007.
Copyright / Drug Dosage / Disclaimer
Copyright: All rights reserved. No part of this publication may be translated into other languages, reproduced or utilized in any form or by any means, electronic or mechanical, including photocopying, recording, microcopying, or by any information storage and retrieval system, without permission in writing from the publisher.
Drug Dosage: The authors and the publisher have exerted every effort to ensure that drug selection and dosage set forth in this text are in accord with current recommendations and practice at the time of publication. However, in view of ongoing research, changes in government regulations, and the constant flow of information relating to drug therapy and drug reactions, the reader is urged to check the package insert for each drug for any changes in indications and dosage and for added warnings and precautions. This is particularly important when the recommended agent is a new and/or infrequently employed drug.
Disclaimer: The statements, opinions and data contained in this publication are solely those of the individual authors and contributors and not of the publishers and the editor(s). The appearance of advertisements or/and product references in the publication is not a warranty, endorsement, or approval of the products or services advertised or of their effectiveness, quality or safety. The publisher and the editor(s) disclaim responsibility for any injury to persons or property resulting from any ideas, methods, instructions or products referred to in the content or advertisements.
You do not currently have access to this content.