1. Chen Y, Wang H, Zhang D, et al. Multi-feature fusion learning for Alzheimer's disease prediction using EEG signals in resting state. Front Neurosci 2023; 17: 1272834. [
DOI]
2. Wilson RS, Segawa E, Boyle PA, et al. The natural history of cognitive decline in Alzheimer's disease. Psychol Aging 2012; 27(4): 1008-17. [
DOI]
3. Kumar K, Kumar A, Keegan RM, et al. Recent advances in the neurobiology and neuropharmacology of Alzheimer's disease. Biomed Pharmacother 2018; 98: 297-307. [
DOI]
4. Ferreira-Vieira TH, Guimaraes IM, Silva FR, et al. Alzheimer's disease: Targeting the Cholinergic System. Curr Neuropharmacol 2016; 14(1): 101-15. [
DOI]
5. Nyakas C, Granic I, Halmy LG, et al. The basal forebrain cholinergic system in aging and dementia. Rescuing cholinergic neurons from neurotoxic amyloid-β42 with memantine. Behav Brain Res 2011; 221(2): 594-603. [
DOI]
6. Kioumarsi Darbandi Z, Amirahmadi S, Goudarzi I, et al. Folic acid improved memory and learning function in a rat model of neuroinflammation induced by lipopolysaccharide. Inflammopharmacology 2024; 32(2): 1401-11. [
DOI]
7. Amirahmadi S, Hosseini M, Ahmadabady S, et al. Folic acid attenuated learning and memory impairment via inhibition of oxidative damage and acetylcholinesterase activity in hypothyroid rats. Metab Brain Dis 2021; 36(8): 2393-403. [
DOI]
8. Tian T, Bai D, Li W, et al. Effects of Folic Acid on Secretases Involved in Aβ Deposition in APP/PS1 Mice. Nutrients 2016; 8(9): 556. [
DOI]
9. Zheng M, Zou C, Li M, et al. Folic Acid Reduces Tau Phosphorylation by Regulating PP2A Methylation in Streptozotocin-Induced Diabetic Mice. Int J Mol Sci 2017; 18(4): 861. [
DOI]
10. Zhang CE, Wei W, Liu YH, et al. Hyperhomocysteinemia increases beta-amyloid by enhancing expression of gamma-secretase and phosphorylation of amyloid precursor protein in rat brain. Am J Pathol 2009; 174(4): 1481-91. [
DOI]
11. Canever L, Alves CSV, Mastella G, et al. The Evaluation of Folic Acid-Deficient or Folic Acid-Supplemented Diet in the Gestational Phase of Female Rats and in Their Adult Offspring Subjected to an Animal Model of Schizophrenia. Mol Neurobiol 2018; 55(3): 2301-19. [
DOI]
12. Thomas P, Fenech M. Buccal Cytome Biomarkers and Their Association with Plasma Folate, Vitamin B12 and Homocysteine in Alzheimer's Disease. J Nutrigenet Nutrigenomics 2015; 8(2): 57-69. [
DOI]
13. Elsherbiny NM, Sharma I, Kira D, et al. Homocysteine Induces Inflammation in Retina and Brain. Biomolecules 2020; 10(3): 393. [
DOI]
14. Dam K, Füchtemeier M, Farr TD, et al. Increased homocysteine levels impair reference memory and reduce cortical levels of acetylcholine in a mouse model of vascular cognitive impairment. Behav Brain Res 2017; 321: 201-8. [
DOI]
15. Gao N, Zhang Y, Lei L, et al. Low doses of folic acid can reduce hyperhomocysteinemia-induced glomerular injury in spontaneously hypertensive rats. Hypertens Res 2020; 43(11): 1182-91. [
DOI]
16. Zhang L, Li Z, Xing C, et al. The protective mechanism of folic acid on hyperhomocysteinemia-related arterial injury in spontaneously hypertensive rats: Folic acid against arterial inflammation. Vascular 2022; 30(5): 988-98. [
DOI]
17. Shooshtari MK, Moazedi AA, Parham GA. Memory and motor coordination improvement by folic Acid supplementation in healthy adult male rats. Iran J Basic Med Sci 2012; 15(6): 1173-9. [
DOI]
18. Zamani N, Moazedi AA, Afarinesh Khaki MR, et al. Effects of Memantine on the Spontaneous Firing Frequency of Hippocampal CA1 Pyramidal Neurons in Intact and Alzheimer Rat Model: An Electrophysiological Study. Basic Clin Neurosci 2022; 13(5): 661-74. [
DOI]
19. Hoveizi E, Mohammadi T, Moazedi AA, et al. Transplanted neural-like cells improve memory and Alzheimer-like pathology in a rat model. Cytotherapy 2018; 20(7): 964-73. [
DOI]
20. Ashkavandi S, Moazedi A A, Semnanian S, et al. The effect of methylprednisolone on spatial learning and memory in adult male rats using an experimental model of Alzheimer’s disease. Feyz 2015; 19(2): 102-10. (Persian) [
Article]
21. Venkatramanan S, Armata IE, Strupp BJ, et al. Vitamin B12 and Cognition in Children. Adv Nutr 2016; 7(5): 879-88. [
DOI]
22. Zavvari F, Karimzadeh F. A Review on the Behavioral Tests for Learning and Memory Assessments in Rat. Shefaye Khatam 2017, 5(4): 110-24. (Persian) [
DOI]
23. He G, Li Y, Deng H, et al. Advances in the study of cholinergic circuits in the central nervous system. Ann Clin Transl Neurol 2023; 10(12): 2179-91. [
DOI]
24. Hanna Al-Shaikh FS, Duara R, Crook JE, et al. Selective Vulnerability of the Nucleus Basalis of Meynert Among Neuropathologic Subtypes of Alzheimer Disease. JAMA Neurol 2020; 77(2): 225-33. [
DOI]
25. Zhang Z, Wu H, Qi S, et al. 5-Methyltetrahydrofolate Alleviates Memory Impairment in a Rat Model of Alzheimer's Disease Induced by D-Galactose and Aluminum Chloride. Int J Environ Res Public Health 2022; 19(24): 16426. [
DOI]
26. Chen TF, Huang RF, Lin SE, et al. Folic Acid potentiates the effect of memantine on spatial learning and neuronal protection in an Alzheimer's disease transgenic model. J Alzheimers Dis 2010; 20(2): 607-15. [
DOI]
27. Zhou D, Lv X, Wang Y, et al. Folic acid alleviates age-related cognitive decline and inhibits apoptosis of neurocytes in senescence-accelerated mouse prone 8: deoxythymidine triphosphate biosynthesis as a potential mechanism. J Nutr Biochem 2021; 97: 108796. [
DOI]