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208 N. Yan et al.

Table 23.2 Signals pathways relevant to visual development, miRNAs and predicted target genes

Putative pathway

miRNA

Putative gene

 

 

 

Sensory perception

hsa-miR-20a;hsa-miR-

VSX1, PHYH, PROM1, FBN1

of light

106a;hsa-miR-29c

PRPF3, COL11A1, ABCA4,

 

hsa-miR-106b;hsa-miR-

VAX2, GUCA1A, CDS1

 

20b;hsa-miR-18a

 

 

hsa-miR-22;hsa-miR-18b

 

Visual perception

hsa-miR-422a, hsa-miR-

PPEF2, VSX1, PHYH, PROM1

 

29a;hsa-miR-29c

EML2, BBS2, GUCA1A, CDS1

 

hsa-miR-22;hsa-miR-

FBN1, PRPF3, GNAT1

 

18a;hsa-miR-18b

 

 

hsa-miR-106b;hsa-miR-

 

 

20b;hsa-miR-19a

 

Hs_GPCRDB_Class_A_

hsa-miR-29a;hsa-miR-

PRLHR, GPR161, CMKOR1,

Rhodopsin-like activity

29c;hsa-miR-18a

OR10H1, MTNR1A,

 

hsa-miR-18b;hsa-miR-

ADRB2, HRH2,

 

22;hsa-miR-20a

NPFFR2, GPR37

 

hsa-miR-106a;hsa-miR-

 

 

106b

 

Rhodopsin-like

hsa-miR-93hsa-miR-

GPR146, PRLHR, GPR161,

receptor activity

20a;hsa-miR-106a

CMKOR1, OPRL1,

 

hsa-miR-29a;hsa-miR-

HRH1, UTS2R,

 

29chsa-miR-18a

HTR2C, ADRB2

 

hsa-miR-106b;hsa-miR-

 

 

20b;hsa-miR-18b

 

 

 

 

References

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Chapter 24

Unexpected Transcriptional Activity

of the Human VMD2 Promoter in Retinal

Development

Meili Zhu, Lixin Zheng, Yumi Ueki, John D. Ash, and Yun-Zheng Le

Abstract Vitelliform macular dystrophy (VMD) is associated with mutations in the VMD2 gene, which encodes a chloride channel protein and is thought to be preferentially expressed in the retinal pigmented epithelium (RPE). In an effort to establish an inducible gene knockout system for the RPE, we recently used a 3.0-kb human VMD2 promoter to direct the expression of a reverse tetracycline-inducible system controlled Cre recombinase in transgenic mice. Although Cre function was localized to the RPE in most VMD2-cre mouse lines, Cre activity was also identified in neural retina in approximately half of the transgenic lines. In two VMD2-cre mouse lines, Cre activity was predominately localized to retinal Müller cells. This surprising expression pattern is likely caused by the transcriptional activity of our transgene system during retinal development. Therefore, our results suggest that transcription of VMD2 gene may occur in progenitors of Müller cells. The two VMD2-cre mouse lines that demonstrated Cre activity specifically in the RPE or predominantly in the Müller cells were fully characterized. These VMD2-cre mice are potentially useful for dissecting cellular mechanisms of age-related macular degeneration or diabetic retinopathy, two leading causes of blindness with high relevance to gene expression in the RPE or Müller cells.

24.1 Introduction

Vitelliform macular dystrophy (VMD), also called Best disease, is associated with mutations in the VMD2 gene, which encodes a chloride channel protein and is thought to be preferentially expressed in the retinal pigmented epithelium (RPE) (Marquardt et al. 1998; Petrukhin et al. 1998; Tsunenari et al. 2003). In an effort to establish an inducible gene knockout system for the RPE, we recently used a 3.0-kb

Y.-Z. Le (B)

Departments of Medicine, Cell Biology and Ophthalmology; Harold Hamm Oklahoma Diabetes Center; Dean A. McGee Eye Institute, University of Oklahoma Health Sciences Center, Oklahoma, OK 73104, USA

e-mail: yun-le@ouhsc.edu

R.E. Anderson et al. (eds.), Retinal Degenerative Diseases, Advances in Experimental

211

Medicine and Biology 664, DOI 10.1007/978-1-4419-1399-9_24,C Springer Science+Business Media, LLC 2010