1、Rucker FJ. Monochromatic and white light and the regulation of eye
growth[ J]. Exp Eye Res, 2019, 184: 172-182.Rucker FJ. Monochromatic and white light and the regulation of eye
growth[ J]. Exp Eye Res, 2019, 184: 172-182.
2、Rucker FJ, Britton S, Taylor C. Color and temporal frequency sensitive
eye growth in chick[ J]. Invest Ophthalmol Vis Sci, 2018, 59(15): 6003-
6013.Rucker FJ, Britton S, Taylor C. Color and temporal frequency sensitive
eye growth in chick[ J]. Invest Ophthalmol Vis Sci, 2018, 59(15): 6003-
6013.
3、Rucker FJ, Kruger PB. Isolated short-wavelength sensitive cones can
mediate a reflex accommodation response[ J]. Vision Res, 2001, 41(7):
911-922.Rucker FJ, Kruger PB. Isolated short-wavelength sensitive cones can
mediate a reflex accommodation response[ J]. Vision Res, 2001, 41(7):
911-922.
4、Seidemann A, Schaeffel F. Effects of longitudinal chromatic aberration
on accommodation and emmetropization[ J]. Vision Res, 2002,
42(21): 2409-2417.Seidemann A, Schaeffel F. Effects of longitudinal chromatic aberration
on accommodation and emmetropization[ J]. Vision Res, 2002,
42(21): 2409-2417.
5、Flitcroft DI. A neural and computational model for the chromatic
control of accommodation[ J]. Vis Neurosci, 1990, 5(6): 547-555.Flitcroft DI. A neural and computational model for the chromatic
control of accommodation[ J]. Vis Neurosci, 1990, 5(6): 547-555.
6、Rucker FJ, Kruger PB. The role of short-wavelength sensitive cones
and chromatic aberration in the response to stationary and step
accommodation stimuli[ J]. Vision Res, 2004, 44(2): 197-208.Rucker FJ, Kruger PB. The role of short-wavelength sensitive cones
and chromatic aberration in the response to stationary and step
accommodation stimuli[ J]. Vision Res, 2004, 44(2): 197-208.
7、Liu R, Qian YF, He JC, et al. Effects of different monochromatic lights
on refractive development and eye growth in guinea pigs[ J]. Exp Eye
Res, 2011, 92(6): 447-453.Liu R, Qian YF, He JC, et al. Effects of different monochromatic lights
on refractive development and eye growth in guinea pigs[ J]. Exp Eye
Res, 2011, 92(6): 447-453.
8、Qian YF, Dai JH, Liu R, et al. Effects of the chromatic defocus caused by interchange of two monochromatic lights on refraction and ocular
dimension in Guinea pigs[ J]. PLoS One, 2013, 8(5): e63229.Qian YF, Dai JH, Liu R, et al. Effects of the chromatic defocus caused by interchange of two monochromatic lights on refraction and ocular
dimension in Guinea pigs[ J]. PLoS One, 2013, 8(5): e63229.
9、Qian YF, Liu R, Dai JH, et al. Transfer from blue light or green light to
white light partially reverses changes in ocular refraction and anatomy
of developing guinea pigs[ J]. J Vis, 2013, 13(11): 16.Qian YF, Liu R, Dai JH, et al. Transfer from blue light or green light to
white light partially reverses changes in ocular refraction and anatomy
of developing guinea pigs[ J]. J Vis, 2013, 13(11): 16.
10、Schaeffel F, Howland HC. Properties of the feedback loops controlling
eye growth and refractive state in the chicken[ J]. Vision Res, 1991,
31(4): 717-734.Schaeffel F, Howland HC. Properties of the feedback loops controlling
eye growth and refractive state in the chicken[ J]. Vision Res, 1991,
31(4): 717-734.
11、Rohrer B, Schaeffel F, Zrenner E. Longitudinal chromatic aberration
and emmetropization: results from the chicken eye[ J]. J Physiol, 1992,
449: 363-376.Rohrer B, Schaeffel F, Zrenner E. Longitudinal chromatic aberration
and emmetropization: results from the chicken eye[ J]. J Physiol, 1992,
449: 363-376.
12、Wildsoet CF, Howland HC, Falconer S, et al. Chromatic aberration and
accommodation: their role in emmetropization in the chick[ J]. Vision
Res, 1993, 33(12): 1593-1603.Wildsoet CF, Howland HC, Falconer S, et al. Chromatic aberration and
accommodation: their role in emmetropization in the chick[ J]. Vision
Res, 1993, 33(12): 1593-1603.
13、Kroger RH, Fernald RD. Regulation of eye growth in the African cichlid
fish Haplochromis burtoni[ J]. Vision Res, 1994, 34(14): 1807-1814.Kroger RH, Fernald RD. Regulation of eye growth in the African cichlid
fish Haplochromis burtoni[ J]. Vision Res, 1994, 34(14): 1807-1814.
14、Kroger RH, Wagner HJ. The eye of the blue acara (Aequidens pulcher,
Cichlidae) grows to compensate for defocus due to chromatic
aberration[ J]. J Comp Physiol A, 1996, 179(6): 837-842.Kroger RH, Wagner HJ. The eye of the blue acara (Aequidens pulcher,
Cichlidae) grows to compensate for defocus due to chromatic
aberration[ J]. J Comp Physiol A, 1996, 179(6): 837-842.
15、Rucker FJ, Kruger PB.Cone contributions to signals for
accommodation and the relationship to refractive error[ J]. Vision Res,
2006, 46(19): 3079-3089.Rucker FJ, Kruger PB.Cone contributions to signals for
accommodation and the relationship to refractive error[ J]. Vision Res,
2006, 46(19): 3079-3089.
16、Rucker FJ, Wallman J. Cone signals for spectacle-lens compensation:
differential responses to short and long wavelengths[ J]. Vision Res,
2008, 48(19): 1980-1991.Rucker FJ, Wallman J. Cone signals for spectacle-lens compensation:
differential responses to short and long wavelengths[ J]. Vision Res,
2008, 48(19): 1980-1991.
17、Jacobs GH, Deegan JF 2nd. Spectral sensitivity, photopigments, and
color vision in the guinea pig (Cavia porcellus)[ J]. Behav Neurosci,
1994, 108(5): 993-1004.Jacobs GH, Deegan JF 2nd. Spectral sensitivity, photopigments, and
color vision in the guinea pig (Cavia porcellus)[ J]. Behav Neurosci,
1994, 108(5): 993-1004.
18、Norton TT, McBrien NA. Normal development of refractive state and
ocular component dimensions in the tree shrew (Tupaia belangeri)[ J].
Vision Res, 1992, 32(5): 833-842.Norton TT, McBrien NA. Normal development of refractive state and
ocular component dimensions in the tree shrew (Tupaia belangeri)[ J].
Vision Res, 1992, 32(5): 833-842.
19、Zhou X, Qu J, Xie R, et al. Normal development of refractive state
and ocular dimensions in guinea pigs[ J]. Vision Res, 2006, 46(18):
2815-2823.Zhou X, Qu J, Xie R, et al. Normal development of refractive state
and ocular dimensions in guinea pigs[ J]. Vision Res, 2006, 46(18):
2815-2823.
20、钱一峰, 戴锦晖, 刘睿, 等. 530nm单色光诱导豚鼠近视眼模型的
建立[ J]. 中国实验动物学报, 2009, 17(6): 401-405.
QIAN YF, DAI JH, LIU R, et al. Establishment of a guinea
pig model of myopia induced by exposing to 530 nm monochromatic
light[ J]. Acta Laboratorium Animalis Scientia Sinica, 2009, 17(6):
401-405.钱一峰, 戴锦晖, 刘睿, 等. 530nm单色光诱导豚鼠近视眼模型的
建立[ J]. 中国实验动物学报, 2009, 17(6): 401-405.
QIAN YF, DAI JH, LIU R, et al. Establishment of a guinea
pig model of myopia induced by exposing to 530 nm monochromatic
light[ J]. Acta Laboratorium Animalis Scientia Sinica, 2009, 17(6):
401-405.
21、钱一峰, 戴锦晖, 刘睿, 等. 短波长单色光对豚鼠眼屈光发育的影
响[ J]. 中国实验动物学报, 2012, 20(5): 5-8.
QIAN YF, DAI JH, LIU R, et al. Effect of short-wavelength
monochromatic light on refractive development and eye growth in
guinea pigs[ J]. Acta Laboratorium Animalis Scientia Sinica, 2012,
20(5): 5-8.钱一峰, 戴锦晖, 刘睿, 等. 短波长单色光对豚鼠眼屈光发育的影
响[ J]. 中国实验动物学报, 2012, 20(5): 5-8.
QIAN YF, DAI JH, LIU R, et al. Effect of short-wavelength
monochromatic light on refractive development and eye growth in
guinea pigs[ J]. Acta Laboratorium Animalis Scientia Sinica, 2012,
20(5): 5-8.
22、Parry JW, Bowmaker JK. Visual pigment coexpression in Guinea pig
cones: a microspectrophotometric study[ J]. Invest Ophthalmol Vis Sci,
2002, 43(5): 1662-1665.Parry JW, Bowmaker JK. Visual pigment coexpression in Guinea pig
cones: a microspectrophotometric study[ J]. Invest Ophthalmol Vis Sci,
2002, 43(5): 1662-1665.