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We dissected brain organoids on
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We identified 20 putative sildenafil targets whose gene expression was altered in LS NPCs compared with control NPCs and restored in LS NPCs treated with sildenafil (Figure 2E). The top responsive gene was HOXA5 (logFC_diseased = −0.02, logFC_treated = +5.2). The HOXA5 hub was involved in extracellular matrix organization in LS NPCs but became associated with differentiation and neurodevelopment upon treatment (Figures 2F and 2G). The HOXA5 network may thus be dysregulated in LS, and its modulation by sildenafil might contribute to healthy neurodevelopment. Another key sildenafil generic responder was PRKG1, a master regulator and downstream target of PDE5,56 which was highlighted by the multi-omics map of the sildenafil rescue signature (Figure 2D).
Statistical analysis
To monitor the expression of putative sildenafil-responsive genes, we treated LS NPCs grown in physiologically low glucose with 1 or 10 μM sildenafil for 6 and 24 h (Figures S6E and S6F). The treatments modulated the expression of sildenafil targets over time, including proliferation-related genes BRD4, STAT3, and NOTCH157,58; synapsis-associated NRG159; neuroinflammation-associated P2RX460; and glucose metabolism-related SLC37A4.61 We used cortical brain organoids to explore the impact of sildenafil on human neurodevelopment. In agreement with previous studies in LS brain organoids,25,29,30 MT-ATP6 variants impaired neurogenic zone formation (Figure 3A) and altered the ratio of early neurons to neural progenitors (Figure 3B). Two different protocols for generating cortical brain organoids showed defective growth rates (Figure S7A). One protocol62 showed size defects in LS organoids after 50 days in culture (Figure S7B); another protocol,63 allowing initial homogeneous organoid shape, resulted in earlier growth defects in LS organoids that became less pronounced over time (Figure S7B). days 70–74 to prepare cortical brain
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organoid slices (cBOSs),69 which we grew
| Condition | Description | Recommended Dose |
|---|---|---|
| Erectile Dysfunction | Difficulty achieving/maintaining erection | 50-100 mg before activity |
| Pulmonary Arterial Hypertension | Improves blood flow in lungs | 20 mg three times daily |
| Off-label Uses | Other possible benefits | Under medical supervision |
until day 129 and then treated
- Sildenafil was initially developed to treat hypertension and angina.
- The typical prescribed dose is up to 100mg, but only under medical supervision.
- Recreational misuse of high doses can result in serious health issues.
- Educate yourself about the potential risks and proper use of sildenafil.
- The drug works best when taken about 30-60 minutes before activity.
with sildenafil for 24 h before
Further information
Nonetheless, sildenafil increased intracellular ATP in LS NPCs (Figure 1G) and restored mtDNA copy number (Figure 1H). The NAD+/NADH ratio was also normalized (Figures 1I and S1D). Because MT-ATP6 defects may disrupt mitochondrial cristae,45 we analyzed the cristae junction regulator MIC60 with stimulated emission depletion (STED) microscopy.46 We inspected the MIC60 labeling pattern of 4,000 STED images with a machine-learning approach by training a neural network classifier to distinguish control NPCs (P[healthy]-score = 1) from LS NPCs (P[healthy]-score = 0). Using images not used for training, we detected altered MIC60 localization in LS NPCs that were partially reversed by sildenafil (Figures 1J and S3K). Manual quantification of approximately 300 STED images yielded similar results (Figure S3L) and highlighted a peripheral MIC60 distribution pattern in LS NPCs that was restored by sildenafil (Figures S3M and S3N).
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Hence, sildenafil improved mitochondrial phenotypes in LS neural cells. The omics design identified (1) the disease signature by comparing DMSO-treated LS NPCs to DMSO-treated control NPCs and (2) the sildenafil signature by comparing sildenafil-treated LS NPCs to DMSO-treated LS NPCs (Figure S1G). The disease signature included biological processes (BPs) related to nervous system and axon development and cellular components (CCs) implicated in the mitochondrial inner membrane and neuronal cell body in transcriptomics (Figures S5A and S5B), and mitochondrial translation and mitochondrial membrane in proteomics (Figures S5F, S5G, and S5I). The sildenafil signature affected similar pathways, including axon and nervous system development (Figure 2A) and mitochondrial inner membrane and neuronal cell body in transcriptomics (Figure S5C) and electron transport chain (ETC) in proteomics (Figures 2B and S5H). Genes restored by sildenafil (Figures S5D and S5E) included neuron-specific calcium sensor CABP147 (Table S1) and neurodevelopment-associated genes HOXA548,49 and DBX150 (Figure S5E; Table S1). applying acute metabolic stress (2 min
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The results suggest that MT-ATP6 variants might affect neural progenitor development. We treated LS brain organoids with sildenafil for either 24 h (acute paradigm) or 45 days (chronic paradigm) (Figure 3C). MT-ATP6 variants disrupted BPs related to synapses and neuronal projections (Figure S7E) and CCs related to neuronal cell bodies and synapses (Figure S7F). The acute sildenafil signature modulated pathways related to embryonic development and Wingless-related integration site (WNT) signaling (Figure 3F) and corrected gene defects (Figures S7C and S7D), including WDR45B, which was downregulated in LS brain organoids (Table S1) and upregulated by sildenafil (Figure S7D), and whose variants are associated with neurodevelopmental disorders.64 Sildenafil also rescued the ratio of early neurons to neural progenitors (Figure 3D) and upregulated DBX1 (Figure 3E). To dissect the cell populations affected by MT-ATP6 variants and chronic sildenafil, we performed single-nucleus RNA sequencing (snRNA-seq) (Figure 3C).
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Unsupervised clustering highlighted 9 clusters (Figure S8A): clusters 0 and 3 for radial glia, clusters 4 and 8 for progenitors, cluster 6 for proliferating progenitors, cluster 5 for immature neurons, cluster 2 for FOXG1-positive neurons, cluster 1 for FOXG1-negative neurons, and cluster 7 for other cell types (Figure S8B). This annotation revealed that MT-ATP6 variants impaired neuronal commitment, with alterations in radial glia, progenitors, and FOXG1-positive neurons (Figures 3G and 3H). The disease signature involved the downregulation in the progenitor population of PRKG1 and NLGN1, a regulator for synapse development65 (Figure 3I), and the downregulation in the neuronal population of genes impacting neurite outgrowth, such as STMN266 (Figure S8D; Table S1). The sildenafil signature upregulated neuronal outgrowth-associated genes, such as RGS667 (Figures S8C and S8D; Table S1). The effect of sildenafil was mostly evident in radial glia and progenitors (Figure S8C; Table S1). of glucose deprivation and inhibition of
- Sildenafil 100g is rarely prescribed and considered an experimental or off-label dose.
- Like all medications, it should only be used as directed by a healthcare professional.
- Overdose signs include severe hypotension, vision loss, or chest pain.
- Use with caution in patients with liver or kidney impairment.
- Avoid alcohol consumption when using sildenafil, especially at high doses.
glycolysis [GLY] and OXPHOS) (Figure 4A).
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Whereas STMN2 was mainly present in FOXG1-positive neurons and immature neurons, RGS6 was found mainly in radial glia, and PRKG1 in radial glia and progenitors (Figures 3J and S8D). The glycolytic signature, suggested to be an indicator of brain organoid stress,68 was not altered, indicating that neither MT-ATP6 variants nor sildenafil posed additional stress (Figure S8E). Altogether, LS disrupted brain organoid development by impairing early neuronal organization of radial glia and progenitor populations, and sildenafil specifically affected those populations. We examined the functional consequences of sildenafil in LS neural cells. Given the reported calcium dysregulation26,27 and the known deterioration of LS patients upon metabolic decompensation,3 we induced acute metabolic stress in LS brain organoids to monitor their intracellular calcium response.
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