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Prospect of naturally derived polysaccharides in intervention in neurodevelopmental disorders
Received date: 2024-01-04
Accepted date: 2024-03-19
Online published: 2024-06-28
Supported by
National Natural Science Foundation of China(32000822);Graduate Research Innovation Program of Bengbu Medical University(Byycx23027)
Neurodevelopmental disorders (NDDs) are chronic developmental brain disorders that can affect cognition, motor, social adaptation, behavior and so on due to multiple genetic or acquired causes. Natural polysaccharides are synthesized by living organisms, located in the cell wall, inside and between cells, and outside the cells, and are essential components of life activities. Previous studies have found that natural polysaccharides play an important role in neurological diseases, which mainly ameliorate the behavioral abnormalities and clinical symptoms caused by anti-oxidative stress, anti-neuronal apoptosis, anti-neuroinflammation, anti-excitatory amino acid toxicity, and regulation of the brain-gut axis. This review summarizes the intervention role of 17 bioactive polysaccharides from plants and fungi in neurological diseases, aiming to provide new ideas for the research and treatment of NDDs.
Dejie ZENG , Zenghui CHEN , Qiankun DING , Xiaqing SUN , Qi SUN , Shibing ZHAO . Prospect of naturally derived polysaccharides in intervention in neurodevelopmental disorders[J]. Journal of Shanghai Jiao Tong University (Medical Science), 2024 , 44(6) : 779 -787 . DOI: 10.3969/j.issn.1674-8115.2024.06.014
1 | MORRIS-ROSENDAHL D J, CROCQ M A. Neurodevelopmental disorders: the history and future of a diagnostic concept[J]. Dialogues Clin Neurosci, 2020, 22(1): 65-72. |
2 | CORTESE S, SONG M J, FARHAT L C, et al. Incidence, prevalence, and global burden of ADHD from 1990 to 2019 across 204 countries: data, with critical re-analysis, from the Global Burden of Disease study[J]. Mol Psychiatry, 2023, 28: 4823-4830. |
3 | ZEIDAN J, FOMBONNE E, SCORAH J, et al. Global prevalence of autism: a systematic review update[J]. Autism Res, 2022, 15(5):778-790. |
4 | JOHNSON K A, WORBE Y, FOOTE K D, et al. Tourette syndrome: clinical features, pathophysiology, and treatment[J]. Lancet Neurol, 2023, 22(2): 147-158. |
5 | ZABLOTSKY B, BLACK L I, MAENNER M J, et al. Prevalence and trends of developmental disabilities among children in the United States: 2009?2017[J]. Pediatrics, 2019, 144(4): e20190811. |
6 | MAENNER M, WARREN Z, WILLIAMS A, et al. Prevalence and characteristics of autism spectrum disorder among children aged 8 years : Autism and Developmental Disabilities Monitoring Network, 11 Sites, United States, 2020[J]. MMWR Surveill Summ, 2023, 72(SS-2):1-14. |
7 | SUN Q Y, CHENG L, ZENG X X, et al. The modulatory effect of plant polysaccharides on gut flora and the implication for neurodegenerative diseases from the perspective of the microbiota-gut-brain axis[J]. Int J Biol Macromol, 2020, 164: 1484-1492. |
8 | ZHAO Y, YAN B Y, WANG Z W, et al. Natural polysaccharides with immunomodulatory activities[J]. Mini Rev Med Chem, 2020, 20(2): 96-106. |
9 | MOHAMMED A S A, NAVEED M, JOST N. Polysaccharides; classification, chemical properties, and future perspective applications in fields of pharmacology and biological medicine (a review of current applications and upcoming potentialities)[J]. J Polym Environ, 2021, 29(8): 2359-2371. |
10 | ZHONG J, QIU X, YU Q, et al. A novel polysaccharide from Acorus tatarinowii protects against LPS-induced neuroinflammation and neurotoxicity by inhibiting TLR4-mediated MyD88/NF-κB and PI3K/Akt signaling pathways[J]. Int J Biol Macromol, 2020, 163: 464-475. |
11 | OLASEHINDE T A, MABINYA L V, OLANIRAN A O, et al. Chemical characterization, antioxidant properties, cholinesterase inhibitory and anti-amyloidogenic activities of sulfated polysaccharides from some seaweeds[J]. Bioact Carbohydr Diet Fibree, 2019, 18: 100182. |
12 | OLASEHINDE T A, MABINYA L V, OLANIRAN A O, et al. Chemical characterization of sulfated polysaccharides from Gracilaria gracilis and Ulva lactuca and their radical scavenging, metal chelating, and cholinesterase inhibitory activities[J]. Int J Food Prop, 2019, 22:100-110. |
13 | MANLUSOC J K T, HSIEH C L, HSIEH C Y, et al. Pharmacologic application potentials of sulfated polysaccharide from marine algae[J]. Polymers (Basel), 2019, 11(7): E1163. |
14 | OLASEHINDE T A, OLANIRAN A O, OKOH A I. Sulfated polysaccharides of some seaweeds exhibit neuroprotection via mitigation of oxidative stress, cholinergic dysfunction and inhibition of Zn-induced neuronal damage in HT-22 cells[J]. BMC Complement Med Ther, 2020, 20(1): 251. |
15 | SIES H, JONES D P. Reactive oxygen species (ROS) as pleiotropic physiological signalling agents[J]. Nat Rev Mol Cell Biol, 2020, 21: 363-383. |
16 | BAI L, XU D, ZHOU Y M, et al. Antioxidant activities of natural polysaccharides and their derivatives for biomedical and medicinal applications[J]. Antioxidants (Basel), 2022, 11(12): 2491. |
17 | ABDUL WAHAB S M, JANTAN I, HAQUE M A, et al. Exploring the leaves of Annona muricata L. as a source of potential anti-inflammatory and anticancer agents[J]. Front Pharmacol, 2018, 9: 661. |
18 | KIM W S, KIM Y E, CHO E J, et al. Neuroprotective effect of Annona muricata-derived polysaccharides in neuronal HT22 cell damage induced by hydrogen peroxide[J]. Biosci Biotechnol Biochem, 2020, 84(5): 1001-1012. |
19 | SHI X D, LI O Y, YIN J Y, et al. Structure identification of α-glucans from Dictyophora echinovolvata by methylation and 1D/2D NMR spectroscopy[J]. Food Chem, 2019, 271:338-344. |
20 | YU W X, LIN C Q, ZHAO Q, et al. Neuroprotection against hydrogen peroxide-induced toxicity by Dictyophora echinovolvata polysaccharide via inhibiting the mitochondria-dependent apoptotic pathway[J]. Biomed Pharmacother, 2017, 88: 569-573. |
21 | CHU Q, ZHANG Y R, CHEN W, et al. Apios americana Medik flowers polysaccharide (AFP) alleviate cyclophosphamide-induced immunosuppression in ICR mice[J]. Int J Biol Macromol, 2020, 144: 829-836. |
22 | CHU Q, CHEN M, SONG D X, et al. Apios americana Medik flowers polysaccharide (AFP-2) attenuates H2O2 induced neurotoxicity in PC12 cells[J]. Int J Biol Macromol, 2019, 123: 1115-1124. |
23 | BYUN E B, CHO E J, KIM Y E, et al. Neuroprotective effect of polysaccharide separated from Perilla frutescens Britton var. acuta Kudo against H2O2-induced oxidative stress in HT22 hippocampus cells[J]. Biosci Biotechnol Biochem, 2018, 82(8): 1344-1358. |
24 | ZHU Y X, DING X, WANG M, et al. Structure and antioxidant activity of a novel polysaccharide derived from Amanita caesarea[J]. Mol Med Rep, 2016, 14(4): 3947-3954. |
25 | LI Z P, CHEN X, ZHANG Y F, et al. Protective roles of Amanita caesarea polysaccharides against Alzheimer's disease via Nrf2 pathway[J]. Int J Biol Macromol, 2019, 121: 29-37. |
26 | HU W J, LI Z P, WANG W Q, et al. Structural characterization of polysaccharide purified from Amanita caesarea and its pharmacological basis for application in Alzheimer's disease: endoplasmic reticulum stress[J]. Food Funct, 2021, 12(21): 11009-11023. |
27 | WANG J, ZHANG Q B, ZHANG Z S, et al. Antioxidant activity of sulfated polysaccharide fractions extracted from Laminaria japonica[J]. Int J Biol Macromol, 2008, 42(2): 127-132. |
28 | WANG J, LIU H D, JIN W H, et al. Structure-activity relationship of sulfated hetero/galactofucan polysaccharides on dopaminergic neuron[J]. Int J Biol Macromol, 2016, 82: 878-883. |
29 | LIU H D, WANG J, ZHANG Q B, et al. Protective effect of fucoidan against MPP+-induced SH-SY5Y cells apoptosis by affecting the PI3K/AKT pathway[J]. Mar Drugs, 2020, 18(6): E333. |
30 | JIANG W, CHEN L, ZHENG S K. Global reprogramming of apoptosis-related genes during brain development[J]. Cells, 2021, 10(11): 2901. |
31 | YUAN J Y, AMIN P, OFENGEIM D. Necroptosis and RIPK1-mediated neuroinflammation in CNS diseases[J]. Nat Rev Neurosci, 2019, 20: 19-33. |
32 | HE Y F, XU W Z, QIN Y M. Structural characterization and neuroprotective effect of a polysaccharide from Corydalis yanhusuo[J]. Int J Biol Macromol. 2020, 157: 759-768. |
33 | LI Y J, GUAN S W, LIU C, et al. Neuroprotective effects of Coptis chinensis Franch polysaccharide on amyloid-beta (Aβ)-induced toxicity in a transgenic Caenorhabditis elegans model of Alzheimer's disease (AD)[J]. Int J Biol Macromol, 2018, 113: 991-995. |
34 | LI Y J, WANG B M, LIU C, et al. Inhibiting c-Jun N-terminal kinase (JNK)-mediated apoptotic signaling pathway in PC12 cells by a polysaccharide (CCP) from Coptis chinensis against amyloid-β (Aβ)-induced neurotoxicity[J]. Int J Biol Macromol, 2019, 134:565-574. |
35 | CHEN J C, LI L, ZHANG X, et al. Structural characteristics and antioxidant and hypoglycemic activities of a heteropolysaccharide from Anemarrhena asphodeloides Bunge[J]. Int J Biol Macromol, 2023, 236: 123843. |
36 | ZHANG S Z, ZHANG Q, AN L J, et al. A fructan from Anemarrhena asphodeloides Bunge showing neuroprotective and immunoregulatory effects[J]. Carbohydr Polym, 2020, 229: 115477. |
37 | SU C, LI N, REN R R, et al. Progress in the medicinal value, bioactive compounds, and pharmacological activities of Gynostemma pentaphyllum[J]. Molecules, 2021, 26(20): 6249. |
38 | JIA D, RAO C G, XUE S X, et al. Purification, characterization and neuroprotective effects of a polysaccharide from Gynostemma pentaphyllum[J]. Carbohydr Polym, 2015, 122: 93-100. |
39 | YANG Q Q, ZHOU J W. Neuroinflammation in the central nervous system: symphony of glial cells[J]. Glia, 2019, 67(6): 1017-1035. |
40 | ABE N, NISHIHARA T, YOROZUYA T, et al. Microglia and macrophages in the pathological central and peripheral nervous systems[J]. Cells, 2020, 9(9): E2132. |
41 | GILHUS N E, DEUSCHL G. Neuroinflammation: a common thread in neurological disorders[J]. Nat Rev Neurol, 2019, 15: 429-430. |
42 | ZHANG F H, WANG Z M, LIU Y T, et al. Bioactivities of serotonin transporter mediate antidepressant effects of Acorus tatarinowii Schott[J]. J Ethnopharmacol, 2019, 241: 111967. |
43 | YAN C Y, ZHONG J, ZHANG Q, et al. Acorus tatarinowii polysaccharides and their preparation and application: CN202010110367.4[P]. 2020-02-21. |
44 | XU M J, YAN T X, FAN K Y, et al. Polysaccharide of Schisandra Chinensis Fructus ameliorates cognitive decline in a mouse model of Alzheimer's disease[J]. J Ethnopharmacol, 2019, 237: 354-365. |
45 | XU M J, WANG J Y, ZHANG X Y, et al. Polysaccharide from Schisandra chinensis acts via LRP-1 to reverse microglia activation through suppression of the NF-κB and MAPK signaling[J]. J Ethnopharmacol, 2020, 256: 112798. |
46 | CHEN Q L, TANG H L, ZHA Z Q, et al. β-D-glucan from Antrodia camphorata ameliorates LPS-induced inflammation and ROS production in human hepatocytes[J]. Int J Biol Macromol, 2017, 104: 768-777. |
47 | GARIBOLDI M B, MARRAS E, FERRARIO N, et al. Anti-cancer potential of edible/medicinal mushrooms in breast cancer[J]. Int J Mol Sci, 2023, 24(12): 10120. |
48 | HAN C Y, GUO L, YANG Y, et al. Study on Antrodia camphorata polysaccharide in alleviating the neuroethology of PD mice by decreasing the expression of NLRP3 inflammasome[J]. Phytother Res, 2019, 33(9): 2288-2297. |
49 | HAN C Y, SHEN H P, YANG Y, et al. Antrodia camphorata polysaccharide resists 6-OHDA-induced dopaminergic neuronal damage by inhibiting ROS-NLRP3 activation[J]. Brain Behav, 2020, 10(11): e01824. |
50 | ARMADA-MOREIRA A, GOMES J I, PINA C C, et al. Going the extra (synaptic) mile: excitotoxicity as the road toward neurodegenerative diseases[J]. Front Cell Neurosci, 2020, 14: 90. |
51 | QIANG X, XIA T, GENG B B, et al. Bioactive components of Lycium barbarum and deep-processing fermentation products[J]. Molecules. 2023, 28(24):8044. |
52 | KOU L, DU M Z, ZHANG C P, et al. Polysaccharide purified from Lycium barbarum protects differentiated PC12 cells against L-Glu-induced toxicity via the mitochondria-associated pathway[J]. Mol Med Rep, 2017, 16(4): 5533-5540. |
53 | YANG Y, LI J H, HONG Q, et al. Polysaccharides from Hericium erinaceus fruiting bodies: structural characterization, immunomodulatory activity and mechanism[J]. Nutrients, 2022, 14(18): 3721. |
54 | ZHANG J R, AN S S, HU W J, et al. The neuroprotective properties of Hericium erinaceus in glutamate-damaged differentiated PC12 cells and an Alzheimer's disease mouse model[J]. Int J Mol Sci, 2016, 17(11): E1810. |
55 | FENTON T M, J?RGENSEN P B, NISS K, et al. Immune profiling of human gut-associated lymphoid tissue identifies a role for isolated lymphoid follicles in priming of region-specific immunity[J]. Immunity, 2020, 52(3): 557-570. |
56 | WANG Q W, YANG Q Y, LIU X Y. The microbiota-gut-brain axis and neurodevelopmental disorders[J]. Protein Cell, 2023, 14(10): 762-775. |
57 | LI S, HU J L, YAO H Y Y, et al. Interaction between four galactans with different structural characteristics and gut microbiota[J]. Crit Rev Food Sci Nutr, 2023, 63(19): 3653-3663. |
58 | ZHU Y Y, DONG L E, HUANG L, et al. Effects of oat β-glucan, oat resistant starch, and the whole oat flour on insulin resistance, inflammation, and gut microbiota in high-fat-diet-induced type 2 diabetic rats[J]. J Funct Foods, 2020, 69: 103939. |
59 | HUANG J Q, WANG Q, XU Q X, et al. In vitro fermentation of O-acetyl-arabinoxylan from bamboo shavings by human colonic microbiota[J]. Int J Biol Macromol, 2019, 125: 27-34. |
60 | FENG H B, FAN J, SONG Z H, et al. Characterization and immunoenhancement activities of Eucommia ulmoides polysaccharides[J]. Carbohydr Polym, 2016, 136: 803-811. |
61 | WANG C Y, TANG L, HE J W, et al. Ethnobotany, phytochemistry and pharmacological properties of Eucommia ulmoides: a review[J]. Am J Chin Med, 2019, 47(2): 259-300. |
62 | SUN P H, WANG M L, LI Z N, et al. Eucommiae cortex polysaccharides mitigate obesogenic diet-induced cognitive and social dysfunction via modulation of gut microbiota and tryptophan metabolism[J]. Theranostics, 2022, 12(8): 3637-3655. |
63 | SAVITZ J. The kynurenine pathway: a finger in every pie[J]. Mol Psychiatry, 2020, 25: 131-147. |
64 | SHENG K J, WANG C L, CHEN B T, et al. Recent advances in polysaccharides from Lentinus edodes (Berk.): isolation, structures and bioactivities[J]. Food Chem, 2021, 358: 129883. |
65 | PAN W, JIANG P F, ZHAO J X, et al. β-Glucan from Lentinula edodes prevents cognitive impairments in high-fat diet-induced obese mice: involvement of colon-brain axis[J]. J Transl Med, 2021, 19(1): 54. |
66 | GUO T Y, AKAN O D, LUO F J, et al. Dietary polysaccharides exert biological functions via epigenetic regulations: advance and prospectives[J]. Crit Rev Food Sci Nutr, 2023, 63(1): 114-124. |
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