| Features: |
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Protocatechuic acid (PCA; 3,4-dihydroxybenzoic acid) is a
naturally occurring phenolic acid found in many fruits, vegetables, grains,
medicinal plants and plant-derived foods. PCA also occurs as a metabolite of
several dietary polyphenols and anthocyanins. It has demonstrated antioxidant,
anti-inflammatory, neuroprotective, cardioprotective and anticancer activities
in preclinical studies. In Alzheimer-related models, PCA has improved learning
and memory, reduced amyloid-β deposition and neuroinflammation, attenuated
oxidative stress and supported cholinergic and neurotrophic signalling. In
APP/PS1 transgenic mice, PCA reduced amyloid deposition and inflammatory
responses while improving cognitive deficits. More recent AD-model studies
also report improvement of cognitive function through modulation of cholinergic
synaptic signalling. In cancer models, PCA can suppress proliferation,
migration and inflammatory signalling and promote apoptosis through mechanisms
involving ROS regulation, NF-κB, PI3K/AKT, MAPK and mitochondrial apoptotic
pathways. PCA is listed as a separate product because purified
protocatechuic acid has been directly administered and studied independently
of the botanical extracts from which it originates. (Example EGb 761) Current therapeutic evidence
remains predominantly preclinical. High PCA Sources Black/purple rice bran - High Hibiscus / roselle - High Açaí - High Black rice - High Purple rice - High Black wild rice - Moderate Blood orange - High precursor source Blackcurrant - Moderate-high Blackberry - Moderate-high Aronia / chokeberry - Moderate-high Dark cherries - Moderate Onion - Moderate Potato - Moderate Barley tea - Moderate |
| Source: |
| Type: |
| Autophagy - Macroautophagy / Autophagic-Lysosomal Pathway Abbreviation: Autophagy, Macroautophagy Type: Cellular degradation pathway / lysosomal quality-control process Function: Autophagy is a conserved cellular recycling pathway in which cytoplasmic proteins, damaged organelles, protein aggregates, and other cellular components are enclosed within autophagosomes and delivered to lysosomes for degradation. Major regulators include ULK1/ATG13, BECN1, VPS34, ATG5, ATG7, LC3, p62/SQSTM1, mTOR, and AMPK. Cancer: ↕ Context-dependent. Autophagy can suppress tumor initiation by removing damaged organelles, limiting oxidative stress, and maintaining genomic stability. In established cancers, however, increased autophagy can support tumor-cell survival during hypoxia, nutrient deprivation, metabolic stress, and anticancer treatment and can contribute to treatment resistance. The biological effect therefore depends strongly on tumor type and disease stage. Alzheimer's Disease: ↓ / impaired autophagic flux. Alzheimer's disease is characterized by dysfunction of the autophagic-lysosomal pathway, including impaired autophagosome maturation and lysosomal clearance. Defective autophagy contributes to accumulation of amyloid-β, phosphorylated tau, damaged mitochondria, and other abnormal proteins. Restoration of effective autophagic flux is generally considered neuroprotective. |
| 7831- | PCA, | MBS, | Neuroprotective Potential of Mung Bean (Vigna radiata L.) Polyphenols in Alzheimer's Disease: A Review |
| - | Review, | AD, | NA |
Query results interpretion may depend on "conditions" listed in the research papers. Such Conditions may include : -low or high Dose -format for product, such as nano of lipid formations -different cell line effects -synergies with other products -if effect was for normal or cancerous cells
Filter Conditions: Pro/AntiFlg:% IllCat:% CanType:% Cells:% prod#:435 Target#:1709 State#:% Dir#:1
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