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1.
Food Res Int ; 157: 111296, 2022 07.
Article in English | MEDLINE | ID: mdl-35761601

ABSTRACT

Banana fruit is prone to chilling injury (CI) during cold storage, resulting in quality deterioration and commodity reduction. The hot water treatment (HWT), dipping banana fruit in hot water (52 °C) for 3 min, reduced CI symptom at 7 °C storage. The purpose of this study was to investigate the potential molecular mechanism of HWT on the alleviation of CI of postharvest banana fruit. It was found that HWT treatment obviously inhibited the increases in CI index, relative electrolytic leakage, and the contents of malonaldehyde (MDA) and O2•-, while enhanced proline accumulation. Further transcriptome analysis in the pericarp of banana fruit was evaluated during storage. The results showed that differentially expressed genes (DEGs) in the comparison between control and HWT group were mainly enriched in photosynthesis, chlorophyll metabolism, lipid metabolism, glutathione metabolism, and brassinosteroid and carotenoid biosynthesis. Moreover, transcriptome expression profiles and RT-qPCR analyses exhibited that the corresponding genes involved in these metabolism pathways and heat shock proteins (HSPs) were upregulated by HWT during cold storage. In general, our findings clearly reveal the potential pathways by which HWT alleviates CI in banana fruit, enriching the theoretical basis for the application of hot water to reduce CI in fruits.


Subject(s)
Musa , Water Purification , Fruit/metabolism , Musa/genetics , Musa/metabolism , Plant Proteins/genetics , Plant Proteins/metabolism , Transcriptome
2.
Food Nutr Res ; 642020.
Article in English | MEDLINE | ID: mdl-32425739

ABSTRACT

BACKGROUND: Burn injury accidents happen in our daily life, and the burn mortality is especially high in the low-to-middle-income countries. Camellia cake extracts (CCEs) are compound extracts from Camellia cake, and the major ingredients in CCEs may have antimicrobial, anti-oxidative, and anti-inflammatory effects. However, the effects of CCEs on burn inflammation and injury remain unknown. OBJECTIVE: This study is to investigate the effects of CCEs in burn injury and explore its mechanism. DESIGN: First, CCEs were identified to mainly contain camelliaside A and B using Ultra High Performance Liquid Chromatography-Time of Flight Mass Spectrometer (UHPLC-TOF-MS) method. Second, the CCEs' effect on burn was tested. Burn was induced by boiling water in mice, and then CCEs (30, 50, and 100 mg/mL) were applied on the damaged skin at 3, 7, and 14 days after burn induction. RESULTS: The results showed that CCEs protected the skin from burn-induced inflammation and enhanced the wound healing in a dose-dependent manner. CCEs decreased the expression levels of various cytokines including IL-6, TNF-α, IL-1ß, MCP-1, TGF-ß, and IL-10, as well as inflammatory related factors iNOS. Moreover, CCEs increased the levels of collagens, including the mRNA of COLα-1 and COL-3, and inhibited the mRNA of MMP-1 and TIMP-1, and increased the collagen staining. CCEs also reversed the impairment of activity levels of anti-oxidative enzymes. Furthermore, CCEs suppressed the gene expression of pro-inflammatory cytokines in LPS-stimulated human skin keratinocyte, possibly through inhibiting NF-κB signaling pathway. In addition, toxicological safety experiments on CCEs showed that the oral median lethal dose (LD50) was 2,000 mg/kg, the percutaneous LD50 was greater than 2,000 mg/kg, and CCEs did not cause gene mutation. CONCLUSION: CCEs exert a potent anti-inflammatory effect against burn damage in mice. And toxicological safety experiments suggest that CCEs are safe for usage.

3.
Future Med Chem ; 9(17): 2069-2079, 2017 11.
Article in English | MEDLINE | ID: mdl-28793800

ABSTRACT

Camellia oleifera Abel is a member of Camellia, and its seeds are used to extract Camellia oil, which is generally used as cooking oil in the south of China. Camellia oil consists of unsaturated fatty acids, tea polyphenol, squalene, saponin, carrot element and vitamins, etc. The seed remains after oil extraction of C. oleifera Abel are by-products of oil production, named as Camellia oil cake. Its extracts contain bioactive compounds including sasanquasaponin, flavonoid and tannin. Major components from Camellia oil and its cake have been shown to have anti-inflammatory, antioxidative, antimicrobial and antitumor activities. In this review, we will summarize the latest advance in the studies on anti-inflammatory or antioxidative effects of C. oleifera products, thus providing valuable reference for the future research and development of C. oleifera Abel.


Subject(s)
Anti-Bacterial Agents/pharmacology , Anti-Inflammatory Agents/pharmacology , Antioxidants/pharmacology , Bacteria/drug effects , Camellia/chemistry , Acetic Acid , Animals , Anti-Bacterial Agents/chemistry , Anti-Bacterial Agents/isolation & purification , Anti-Inflammatory Agents/chemistry , Anti-Inflammatory Agents/isolation & purification , Antioxidants/chemistry , Antioxidants/isolation & purification , Colitis/chemically induced , Colitis/drug therapy , Humans , Intestinal Mucosa/drug effects , Intestinal Mucosa/pathology , Ketoprofen/antagonists & inhibitors , Ketoprofen/pharmacology
4.
Cancer Lett ; 402: 203-212, 2017 08 28.
Article in English | MEDLINE | ID: mdl-28602976

ABSTRACT

Stimulator of interferon genes (STING) is a DNA sensor and an important cytoplasmic adaptor for other DNA sensors, such as Z-DNA binding protein 1 (DAI), DEAD-box helicase 41 (DDX41), and interferon-γ-inducible protein 16 (IFI16). The activation of STING signaling leads to the production of type I interferons and some other pro-inflammatory cytokines, which are critical for host defense against viral infection. Recent accumulating evidences suggest that STING is also involved in tumor development. However, the role of STING signaling in tumorigenesis is complicated, and a comprehensive review is still lacking. In this paper, we provided an overview of the dual role of STING signaling in tumor development from clinical significance to fundamental mechanisms, as well as its pre-clinical application in cancer therapy.


Subject(s)
Biomarkers, Tumor/metabolism , Membrane Proteins/metabolism , Neoplasms/metabolism , Signal Transduction , Animals , Antineoplastic Agents/therapeutic use , Biomarkers, Tumor/agonists , Biomarkers, Tumor/immunology , Cell Movement , Cell Transformation, Neoplastic/immunology , Cell Transformation, Neoplastic/metabolism , Cell Transformation, Neoplastic/pathology , Humans , Membrane Proteins/agonists , Membrane Proteins/immunology , Molecular Targeted Therapy , Neoplasm Metastasis , Neoplasms/drug therapy , Neoplasms/immunology , Neoplasms/pathology , Signal Transduction/drug effects
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