Entity Detail — Knowledge Graph Node
This page aggregates everything SciDEX knows about PLAT: its mechanistic relationships (Knowledge Graph edges), hypotheses targeting it, analyses mentioning it, and supporting scientific papers. The interactive graph below shows its immediate neighbors. All content is AI-synthesized from peer-reviewed literature.
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| Name | PLAT |
| Key Genes/Proteins | ABCA1, ALZHEIMER, ALZHEIMER'S DISEASE, App, APP, CASP4 |
| Related Diseases | Als, ALS, Alzheimer, Brain Hemorrhagic Transformation, Hemorrhagic Transformation |
graph TD
PLAT["PLAT"]
PLAT -->|"causes"| Hemorrhagic_Transformation["Hemorrhagic Transformation"]
PLAT -->|"causes"| Brain_Hemorrhagic_Transformati["Brain Hemorrhagic Transformation"]
PLAT -->|"regulates"| Alzheimer["Alzheimer"]
PLAT -->|"regulates"| Als["Als"]
PLAT -->|"regulates"| ALS["ALS"]
PLAT -->|"contributes to"| Inflammation["Inflammation"]
PLAT -->|"interacts"| GENES["GENES"]
PLAT -->|"regulates"| ALZHEIMER["ALZHEIMER"]
PKD2["PKD2"] -->|"interacts"| PLAT
PSMB5["PSMB5"] -->|"contributes to"| PLAT
NEP["NEP"] -->|"contributes to"| PLAT
PARK7["PARK7"] -->|"contributes to"| PLAT
GENES -->|"contributes to"| PLAT
INFLAMMATION["INFLAMMATION"] -->|"contributes to"| PLAT
CASP4["CASP4"] -->|"contributes to"| PLAT
ALZHEIMER -->|"regulates"| PLAT| Target | Relation | Type | Str |
|---|---|---|---|
| Ischemic Stroke | treats | disease | 0.95 |
| Hemorrhagic Transformation | causes | phenotype | 0.95 |
| Brain Hemorrhagic Transformation | causes | disease | 0.80 |
| Alzheimer | regulates | disease | 0.65 |
| Als | regulates | disease | 0.65 |
| ALS | regulates | disease | 0.65 |
| Inflammation | contributes_to | disease | 0.65 |
| GENES | interacts_with | gene | 0.60 |
| PARK7 | contributes_to | gene | 0.60 |
| GNB5 | contributes_to | gene | 0.60 |
| SNCA | contributes_to | gene | 0.60 |
| ABCA1 | contributes_to | gene | 0.60 |
| Lipid Metabolism | contributes_to | pathway | 0.60 |
| Neurogenesis | contributes_to | pathway | 0.60 |
| Oxidative Stress | contributes_to | pathway | 0.60 |
| APP | contributes_to | gene | 0.60 |
| ALZHEIMER | regulates | gene | 0.60 |
| CASP4 | contributes_to | gene | 0.60 |
| PSMB5 | contributes_to | gene | 0.60 |
| NEP | contributes_to | gene | 0.60 |
| App | interacts_with | protein | 0.60 |
| PKD2 | interacts_with | gene | 0.60 |
| Ca1 | expressed_in | brain_region | 0.55 |
| Source | Relation | Type | Str |
|---|---|---|---|
| GENES | contributes_to | gene | 0.60 |
| INFLAMMATION | contributes_to | gene | 0.60 |
| CASP4 | contributes_to | gene | 0.60 |
| ALZHEIMER | regulates | gene | 0.60 |
| APP | contributes_to | gene | 0.60 |
| GNB5 | contributes_to | gene | 0.60 |
| SNCA | contributes_to | gene | 0.60 |
| OXIDATIVE STRESS | contributes_to | gene | 0.60 |
| ALZHEIMER'S DISEASE | regulates | gene | 0.60 |
| NEURODEGENERATIVE DISEASES | regulates | gene | 0.60 |
| ABCA1 | contributes_to | gene | 0.60 |
| PKD2 | interacts_with | gene | 0.60 |
| PSMB5 | contributes_to | gene | 0.60 |
| NEP | contributes_to | gene | 0.60 |
| PARK7 | contributes_to | gene | 0.60 |
Hypotheses where this entity is a therapeutic target
Scientific analyses that reference this entity
No analyses mention this entity
Experimental studies targeting or related to this entity
| Experiment | Type | Disease | Score | Feasibility | Model | Status | Est. Cost |
|---|---|---|---|---|---|---|---|
| E2F coordination of G2/M transcriptional program | exploratory | 0.750 | 0.00 | endocycling mammalian cells | proposed | N/A | |
| s:** - ALOX15 overexpression in healthy astrocytes should be protectiv | falsification | Neuroinflammation | 0.400 | 0.50 | mouse | proposed | $200,000 |
Scientific publications cited in analyses involving this entity
| Title & PMID | Authors | Journal | Year | Citations |
|---|---|---|---|---|
| Allosteric properties of mammalian ALOX15 orthologs. [PMID:41654134] | Yang J, Borchert A, Kuhn H | J Biol Chem | 2026 | 1 |
| SBFI26 induces triple-negative breast cancer cells ferroptosis via lipid peroxid [PMID:38516826] | He G, Zhang Y, Feng Y, Chen T, Liu M, Ze | J Cell Mol Med | 2024 | 1 |
| Mitochondrial DNA stress triggers autophagy-dependent ferroptotic death. [PMID:32186434] | Li C, Zhang Y, Liu J, Kang R, Klionsky D | Autophagy | 2021 | 1 |
| 5-lipoxygenase pathway and its downstream cysteinyl leukotrienes as potential th [PMID:32222525] | Chen F, Ghosh A, Lin J, Zhang C, Pan Y, | Brain Behav Immun | 2020 | 1 |
| Decoding cell death signals in liver inflammation. [PMID:23567086] | Brenner C, Galluzzi L, Kepp O, Kroemer G | J Hepatol | 2013 | 1 |
| Enhancing the efficiency of bone tissue regeneration by using a 3D printed scaff [PMID:41435437] | Ku CY, Chen YH, Lin CM, Chu YH, Ho YJ, L | Biomedical materials (Bristol, | 2026 | 0 |
| Extracellular vesicles from IPFP-MSCs trigger osteoarthritis by transferring mtD [PMID:41480405] | Li S, Yan Z, Zhi X, Zheng W, Zhang Z et | Bioact Mater | 2026 | 0 |
| Comprehensive multi-omics analysis and experimental validation indicate that VPS [PMID:41531939] | Wan D, Qi Y, Kang Y, Liang F, Wang Q et | RSC Med Chem | 2026 | 0 |
| Integrated Bioinformatics Analysis of Screen Mitochondrial Autophagy-Related Cor [PMID:41731906] | Gao Z, Wang Y, Ren Y, Lyu J | J Neurochem | 2026 | 0 |
| VPS35 Deficiency Markedly Reduces the Proliferation of HEK293 Cells. [PMID:41751560] | Lee S, Park S, Bang H, Kim SU, Park YH e | Genes (Basel) | 2026 | 0 |
| N-acetyl-l-leucine lowers α-synuclein levels and improves synaptic function in P [PMID:41766663] | Song P, Chen C, Franchini R, Duong B, Wa | J Clin Invest | 2026 | 0 |
| The VPS35 protein and the role of its impairments in mitochondrial dysfunction i [PMID:41841708] | Buneeva OA, Medvedev AE | Biomed Khim | 2026 | 0 |
| Vps35 p. D620N causes Lrrk2 kinase hyperactivity, chronic microglial activation [PMID:41846978] | Deng IB, Bu M, Follett J, Sharp R, Mamai | bioRxiv | 2026 | 0 |
| Lack of Cerebrospinal Fluid α-Synuclein Seeding in VPS35 D620N- and LRRK2 Y1699C [PMID:41912440] | Santinelli L, Pratuseviciute N, Lange LM | Mov Disord | 2026 | 0 |
| Genome editing in Parkinson's disease: Unlocking therapeutic avenues through CRI [PMID:41905621] | ["Singh R", "Maity P", "Jaiswal C"] | Neurochemistry international | 2026 | 0 |
| Targeting Non-coding RNAs in Neurodegeneration: Advances in Therapeutic RNA Moda [PMID:41588889] | ["Thakur A", "Chowdhury K", "Kumar A", " | Current Alzheimer research | 2026 | 0 |
| Hereditary Polyneuropathies in the Era of Precision Medicine: Genetic Complexity [PMID:41595476] | ["Chrysostomaki M", "Chatzi D", "Kyriako | Genes | 2026 | 0 |
| Neuroinflammation, Autophagy, and Neurodegeneration: Mechanisms and Therapeutic [PMID:41918200] | ["Khanal P", "Balmik A"] | CNS & neurological disorders d | 2026 | 0 |
| Intestinal mast cell-derived leukotrienes mediate the anaphylactic response to i [PMID:40773543] | Bachtel ND, Cullen JL, Liu M, Erickson S | Science (New York, N.Y.) | 2025 | 0 |
| CRISPR-Cas technologies in neurodegenerative disorders: mechanistic insights, th [PMID:41674784] | ["Yashooa R", "Nabi A", "Smail S", "Azee | Frontiers in neurology | 2025 | 0 |
Multi-agent debates referencing this entity
No debates reference this entity
Hypotheses and analyses mentioning PLAT in their description or question text
Score: 0.625 · neurodegeneration · 2026-04-22
## Mechanistic Overview H7: Aberrant RNA Template Switching Converts Granules to Aggregation Prone starts from the claim
Score: 0.597 · neurodegeneration · 2026-04-02
Heparan sulfate and other glycosaminoglycans serve as nucleation templates that facilitate cross-seeding by concentratin
Score: 0.524 · neurodegeneration · 2026-04-12
## **Molecular Mechanism and Rationale** The pharmacogenomic CNS drug optimization platform leverages fundamental diffe
Score: 0.520 · neurodegeneration · 2026-04-22
## Mechanistic Overview Restoring AQP4 Astrocyte Polarization Enhances Glymphatic Tau Clearance and Limits Template-Depe
Score: 0.480 · neurodegeneration · 2026-04-21
## Mechanistic Overview Platelet-Derived PDGF-BB Primes VSMCs for P2RY12 Upregulation starts from the claim that modulat
Score: 0.380 · protein biochemistry · 2026-04-27
The recognition and remodeling of amyloidogenic protein species involves a sequential conformational templating mechanis