| Literature DB >> 29929962 |
Yumi Ueki1, Veronika Shchepetkina2, Frances Lefcort2.
Abstract
Familial dysautonomia (FD) is anEntities:
Keywords: Familial dysautonomia; IKAP/ELP1; Mitochondria; Retinal degeneration; Retinal ganglion cells
Mesh:
Substances:
Year: 2018 PMID: 29929962 PMCID: PMC6078410 DOI: 10.1242/dmm.033746
Source DB: PubMed Journal: Dis Model Mech ISSN: 1754-8403 Impact factor: 5.758
Fig. 1.Generation of a retinal model of FD. Pax6-Cre mice were generated to delete Ikbkap selectively from the retina. (A) Representative IKAP western blot at 1 month. (B) Pax6-Cre (CKO) retinas show a 70% decrease in IKAP expression compared with Pax6-Cre (Control; Ctrl) retinas at 1 month. *P=0.000016 with Student's t-test (n=5). (C-E) Pax6-Cre expression was analyzed on retinal (C) flatmounts and (D) cross-sections using Rosa-EGFP Cre reporter mice at 1 month. Cre expression was detected in the mid-peripheral retinas and, typically, 50-85% of the retina was affected in each eye. Images in C and D are composites. Multiple images were taken and reconstructed to show whole retinal (C) flatmount and (D) cross sections. (E) Representative images of retinal cross-sections in the Cre-expressing region are shown. All cell types of the retina expressed Cre (GFP+), including RGCs (Brn3+ and/or RBPMS+). GCL, ganglion cell layer; INL, inner nuclear layer; ONL, outer nuclear layer.
Fig. 2.Loss of IKAP in the retina causes progressive loss of RGCs. (A) At 9 months, Pax6-Cre Ikbkap CKO retinas show a decrease in the number of Brn3+ RGCs at 1 mm from the optic nerve. (B) Significant loss of Brn3+ RGCs in CKO retinas was detected in all quadrants (temporal, superior, nasal and inferior) as early as 1 month, and the loss was progressive. Rapid RGC loss occurs between 1 month and 3 months. There was no significant difference in the number of RGCs at P14, when retinal development has completed. P14 (n=4), 1 month (n=6), 3 months (n=4), 6 months (n=6) and 9 months (n=3). The number of RGCs in the control and CKO retinas at the same region and age were compared with Student's t-test (*P<0.05). (C) Cross-sections of 6 month temporal retinas at 1.5 mm from the optic nerve. There was an apparent reduction in the number of Brn3+ RGCs and total RGCs (RBPMS+, pan-RGC marker). (D) Cross-sections of optic nerves at 1 month (top) and 9 months (bottom) were visualized with DAPI staining. (E) There was no difference in control and CKO optic nerve circumference at 1 month. P=0.41 (not significant) with Student's t-test (n=3). (F) By 9 months, there is a 45% decrease in CKO optic nerve circumference compared with controls. *P=0.018 with Student's t-test (n=3). (G,H) There was no loss of melanopsin+ intrinsically photosensitive RGCs at 18 months. Melanopsin+ cells were counted at 1 mm from the optic nerve in each quadrant. P=0.2 (temporal), P=0.3 (superior), P=0.3 (nasal) and P=0.1 (inferior) with Student's t-test (n=5). Scale bars: 100 µm (A,D,G) and 50 µm (C).
Fig. 3.Loss of IKAP does not cause degeneration of retinal neurons other than RGCs. (A) H&E staining of 15 month retinal cross-sections at central (0.5 mm from the optic nerve head, ONH), middle (1 mm from ONH) and peripheral (1.5 mm from ONH) retina. Central retinas, where Pax6-Cre is not expressed, do not show any morphological differences between control and CKO mice. In the middle-peripheral retinas of CKO mice, where Pax6-Cre is active, reduction of RGCs in the ganglion cell layer (GCL) is apparent, whereas other cell types of the retina do not display any abnormal number and morphology. (B) The number of rows of photoreceptor nuclei in the outer nuclear layer was counted at 0.25 mm from the ONH in the temporal and nasal retinas at 15 months. There was no difference in the photoreceptor number between control and CKO retinas. The number was compared at the same distance with Student's t-test (n=6 for control; n=5 for CKO). For all points, P>0.05 (not significant). (C) IHC of cilia marker PKD2L-1(red) shows no abnormality in photoreceptor cilia structure between the inner segment and outer segment at 9 months. (D,E) The number of ChAT+ cholinergic amacrine cells in 6 month retinas was counted at 1 mm from the ONH in each quadrant. Representative images of the temporal inner nuclear layer (INL) and GCL ChAT+ cells (red) are shown (D). There was no difference in the number of ChAT+ cholinergic amacrine cells in either INL or GCL (E). P>0.05 with Student's t-test for all points (n=5). T, temporal; S, superior; N, nasal; I, inferior. Scale bars: 50 µm (A,C) and 100 µm (D).
Fig. 4.Integrity of the mitochondrial membrane was lost in CKO RGCs. Mitochondria of RGCs were visualized using TEM at (A-C) 1 month and (D-F) 2.5 months. At both 1 and 2.5 months, CKO mitochondria (B,C,E,F) show a disrupted double-membrane structure (arrows) compared with controls (A,D), indicating that loss of IKAP led to morphological impairment of mitochondria in RGCs. Representative images are shown. Asterisks indicate mitochondria. Squared regions in A-F are shown enlarged in A′-F′.
Fig. 5.Progressive loss of mitochondrial membrane integrity in the CKO retinas. Retinas of the indicated ages (2, 4, 7 and 12 weeks) were collected and western blot analysis performed using the mitochondrial membrane integrity antibody cocktail. The cocktail included protein markers of the four mitochondrial compartments. (A) Representative blot. There was no difference in the expression of protein markers of the four mitochondrial compartments at 2 weeks (P14, at the completion of retinal development) between control and CKO retinas. A significant reduction in cyclophilin D and cytochrome c in CKO retinas was detected as the retina ages, suggesting progressive disruption in mitochondrial structure. IM, inner membrane; OM, outer membrane; IMS, intermembrane space. Equal amounts of retinal lysate proteins were loaded. (B) Western blot quantitation for cyclophilin D. There was a progressive decrease in cyclophlin D and a significant decrease in its expression was detected in CKO retinas at 7 weeks. *P<0.05 with Student's t-test; 2 weeks (P=0.26; n=5), 7 weeks (P=0.031; n=3 for control; n=6 for CKO) and 12 weeks (P=0.018; n=4). (C) Significant reduction in cytochrome c expression was observed in CKO retinas compared with controls by 12 weeks. *P<0.05 with Student's t-test; 2 weeks (P=0.31; n=5), 7 weeks (P=0.080; n=3 for control; n=6 for CKO) and 12 weeks (P=0.016; n=4).
Fig. 6.Loss of IKAP causes mitochondrial membrane depolarization, impairs complex I function and decreases cellular ATP levels. (A) Freshly isolated 3-month old retinas were treated briefly with MitoTracker Red CMXRos and Hoechst (nuclear marker), fixed and flatmounted for confocal imaging. Representative images of the RGC layer are shown. The signal intensity of MitoTracker Red CMXRos correlates with healthy mitochondrial membrane potential. Scale bar: 50 µm. (B) ImageJ analysis revealed a 50% decrease in MitoTracker Red CMXRos signal intensity in the CKO RGC layer compared with controls, indicating that there was significant loss of mitochondrial membrane potential in the cells of the RGC layer in CKO mice. *P=0.00026 with Student's t-test (n=5). (C) Mitochondria of 2.5 month control and CKO retinas were isolated and mitochondrial complex I function was measured. CKO retinas had a 22% reduction in complex I activity compared with controls. *P=0.0025 with Student's t-test (n=5). (D) Total ATP of the control and CKO retinas was measured from the total retinal lysates at 2.5 months. Total ATP content of the CKO retina was 40% that of the control. *P=0.0053 with Student's t-test (n=5).