References
Allow, S. M., & Sarhat, E. R. (2023). Metformin effects on blood levels of gremlin-1 in polycystic ovarian women. Georgian Medical News, (337), 51-55.
Boada, M., Martínez-Lage, P., Serrano-Castro, P., Costa, M., & Páez, A. (2021). Therapeutic plasma exchange with albumin: A new approach to treat Alzheimer’s disease. Expert Review of Neurotherapeutics, 21(8), 843-849.
Cararo-Lopes, M. M., Mazucanti, C. H. Y., Scavone, C., Kawamoto, E. M., & Berwick, D. C. (2017). The relevance of alphaKLOTHO to the central nervous system: Some key questions. Ageing Research Reviews, 36, 137-148.
Chew, H., Solomon, V. A., & Fonteh, A. N. (2020). Involvement of Lipids in Alzheimer’s Disease Pathology and Potential Therapies. Front. Physiol, 11, 598. doi: 10.3389/fphys.2020.00598
Entedhar, R. S., Al., M. M., & Takea, S. (2022). Study of oxidant-antioxidant status in cerebrospinal fluid of children with meningitis. Eurasian Chemical Communications, 4(9), 863-869. http://www.echemcom.com/article-148799.html
Entedhar, R. S., Al-Anzy, M. M. Y., Ahmeid, M. S., & Sarhat, T. R. (2018). Characteristic Abnormalities in Serum Biochemistry during Congestive Heart Failure. The Medical Journal of Tikrit University, 24(1), 69-77.
Entedhar, R. S., W., S. A., Awni, N., JA, N., & RS, T. R. (2022). Evaluation of Vimentin and Some Biochemical Parameters in the Blood of Acute Myocardial Infarction Patients. Egypt. J. Chem, 65(1), 221–226.
Esterbauer, H., et al. (1991). Chemistry and Biochemistry of 4-Hydroxynonenal, malondialdehyde and related aldehydes. Free Radical Biology and Medicine, 11, 81-128.
Grant, G. H., et al. (1987). Amino Acids and Proteins; Fundamentals of Clinical Chemistry. In N. W. Tietz (Ed.), Third Edition. WB Saunders Company, Philadelphia, USA, 328-329.
Guin, S. K., Velasco-Torrijos, T., & Dempsey, E. (2022). Explorations in a galaxy of sialic acids: A review of sensing horizons, motivated by emerging biomedical and nutritional relevance. Sensors and Diagnostics, 1, 10-70.
Guruaribam, V. D., & Sarumathi, T. (2020). Relevance of serum and salivary sialic acid in oral cancer diagnostics. Journal of Cancer Research and Therapeutics, 16, 401-404. https://www.cancerjournal.net/text.asp?2020/16/3/401/289974
Gustaw-Rothenberg, K., Kowalczuk, K., & Stryjecka-Zimmer, M. (2010). Lipids' peroxidation markers in Alzheimer's disease and vascular dementia. Geriatrics & Gerontology International, 10(2), 161-166.
Guven, A., Dalginli, K. Y., Culhaoglu, H., Huseyinoglu, N., & Alp, S. I. (2020). Investigation of the Levels of Blood MDA, GSH and Nitric Oxide Levels in Patients with Probable Alzheimer’s Disease. Kafkas J Med Sci, 10(3), 188–194.
Hamad, M. S., Ahmed, A. E., Ahmed, S. E., Sarhat, E. R., & Al Anzy, M. M. (2023). Serum lipocalin-2, and fetuin-A levels in patients with Alzheimer's disease. GMN, 4(337), 25-29.
Hu, Y., Wang, J., Zeng, S., Chen, M., Zou, G., Li, Y., Zhu, L., & Xu, J. (2021). Association between serum albumin levels and diabetic peripheral neuropathy among patients with type 2 diabetes: Effect modification of body mass index. Diabetes, Metabolic Syndrome and Obesity, 15, 527-534. https://doi.org/10.2147/DMSO.S347349
Huan, L., Klaus, C., & Neumann, H. (2020). Control of innate immunity by sialic acids in the nervous tissue. International Journal of Molecular Sciences, 21(15), 5494. https://doi.org/10.3390/ijms21155494
Imel, E. A., Biggin, A., Schindeler, A., & Munns, C. F. (2019). FGF23, hypophosphatemia, and emerging treatments. JBMR Plus, 3(8), e10190. doi: 10.1002/jbm4.10190
Iyaswamy, A., Wang, X., Krishnamoorthi, S., Kaliamoorthy, V., Sreenivasmurthy, S. G., Durairajan, S. S. K., Song, J. X., Tong, B. C., Zhu, Z., Su, C. F., Liu, J., Cheung, K. H., Lu, J. H., Tan, J. Q., Li, H. W., Wong, M. S., & Li, M. (2022). Theranostic F-SLOH mitigates Alzheimer's disease pathology involving TFEB and ameliorates cognitive functions in Alzheimer's disease models. Redox Biology, 51, 102280. https://doi.org/10.1016/j.redox.2022.102280
Jia-Jyun W., Weng, S.-C., Liang, C.-K., Lin, C.-S., Lan, T.-H., Lin, S.-Y., & Lin, Y.-T. (2020). Effects of kidney function, serum albumin and hemoglobin on dementia severity in the oldest old people with newly diagnosed Alzheimer’s disease in a residential aged care facility: A crosssectional study. BMC Geriatrics.
Kurpas, A., Supel, K., Idzikowska, K., & Zielinska, M. (2021). FGF23: A Review of Its Role in Mineral Metabolism and Renal and Cardiovascular Disease. Disease Markers, Article ID 8821292, 12 pages. https://doi.org/10.1155/2021/8821292
Liang, Y., Luo, S., Schooling, C. M., & Au Yeung, S. L. (2021). Genetically Predicted Fibroblast Growth Factor 23 and Major Cardiovascular Diseases, Their Risk Factors, Kidney Function, and Longevity: A Two-Sample Mendelian Randomization Study. Frontiers in Genetics, 12, 699455. https://doi.org/10.3389/fgene.2021.699455
Liu, Z., Liu, Y., Tu, X., et al. (2017). High serum levels of malondialdehyde and 8-OHdG are both associated with early cognitive impairment in patients with acute ischemic stroke. Scientific Reports, 7, 9493. https://doi.org/10.1038/s41598-017-09988-3
McGrath, E. R., Himali, J. J., Levy, D., Conner, S. C., Pase, M. P., Abraham, C. R., et al. (2019). Circulating fibroblast growth factor 23 levels and incident dementia: The Framingham heart study. PLoS ONE, 14(3), e0213321. https://doi.org/10.1371/journal.pone.0213321
Mirza, M. A., Larsson, A., Melhus, H., Lind, L., & Larsson, T. E. (2009). Serum intact FGF23 associates with left ventricular mass, hypertrophy and geometry in an elderly population. Atherosclerosis, 207(2), 546–551.
Mohammed, I. J., Sarhat, E. R., Hamied, M. A., & Sarhat, T. R. (2021). Assessment of salivary interleukin (IL)-6, IL-10, oxidative stress, antioxidant status, pH, and flow rate in dental caries experience patients in Tikrit Province. Systematic Reviews in Pharmacy, 12(1), 55-59.
Mori, Y., Tsuji, M., Oguchi, T., Kasuga, K., Kimura, A., Futamura, A., Sugimoto, A., Kasai, H., Kuroda, T., Yano, S., Hieda, S., Kiuchi, Y., Ikeuchi, T., & Ono, K. (2021). Serum BDNF as a potential biomarker of Alzheimer's disease: Verification through assessment of serum, cerebrospinal fluid, and medial temporal lobe atrophy. Frontiers in Neurology, 12, 653267. https://doi.org/10.3389/fneur.2021.653267
Piubelli, L., Pollegioni, L., Rabattoni, V., Mauri, M., Princiotta Cariddi, L., Versino, M., & Sacchi, S. (2021). Serum D-serine levels are altered in early phases of Alzheimer's disease: Towards a precocious biomarker. Translational Psychiatry, 11(1), 77. https://doi.org/10.1038/s41398-021-01202-3
Rani, P., Krishnan, S., & Rani Cathrine, C. (2017). Study on analysis of peripheral biomarkers for Alzheimer’s disease diagnosis. Frontiers in Neurology, 8, 328. https://doi.org/10.3389/fneur.2017.00328
Rao, Y. L., Ganaraja, B., Marathe, A., Manjrekar, P. A., Joy, T., Ullal, S., Pai, M. M., & Murlimanju, B. V. (2021). Comparison of malondialdehyde levels and superoxide dismutase activity in resveratrol and resveratrol/donepezil combination treatment groups in Alzheimer's disease induced rat model. 3 Biotech, 11(7), 329. https://doi.org/10.1007/s13205-021-02879-5
Rifai, N. (2018). Tietz Fundamentals of Clinical Chemistry and Molecular Diagnostics (8th ed.).
Sarhat, E. R. (2015). Evaluation of melatonin, and adipokines in patients with Alzheimer’s disease. Global Journal of Biochemistry and Biotechnology, 4(3), 287-295.
Sarhat, E. R., Rmaid, Z. J., & Jabir, T. H. (2020). Changes of salivary interleukine17, Apelin, Omentin and Vaspin levels in normal subjects and diabetic patients with chronic periodontitis. Annals of Tropical Medicine & Public Health, 23(Suppl), S404. http://doi.org/10.36295/ASRO.2020.23118
Sarhat, E. R., Sami, A. Z., Shaimaa, E. A., Takea, S. Ahmed, & Thuraia, R. Sarhat. (2022). Salivary biochemical variables of liver function among individuals with COVID-19 in Thi-Qar Province. Egyptian Journal of Chemistry, 65(6), 305-310.
Sirikul, W., Siri-Angkul, N., Chattipakorn, N., & Chattipakorn, S. C. (2022). Fibroblast growth factor 23 and osteoporosis: Evidence from bench to bedside. International Journal of Molecular Sciences, 23, 2500. https://doi.org/10.3390/ijms23052500
Takeshita, A., Kawakami, K., Furushima, K., & Miyajima, M., & Sakaguchi, K. (2018). Central role of the proximal tubular αKlotho/FGF receptor complex in FGF23-regulated phosphate and vitamin D metabolism. Scientific Reports, 8, 6917.
Wang, L., Wang, F., Liu, J., Zhang, Q., & Lei, P. (2018). Inverse relationship between baseline serum albumin levels and risk of mild cognitive impairment in elderly: A seven-year retrospective cohort study. Tohoku Journal of Experimental Medicine, 246(1), 51-57.
Warren, L. (1959). The Thiobarbituric Acid Assay of Sialic Acids. Journal of Biological Chemistry, 234, 1971-1975.
Washeel, K. G., Sarhat, E. R., & Jabir, T. H. (2019). Assessment of melatonin and oxidant-antioxidant markers in infertile men in Thi-Qar Province. Indian Journal of Forensic Medicine & Toxicology, 13, 1500-1504.
Xiu, W. J., Yang, H. T., Zheng, Y. Y., Wu, T. T., Hou, X. G., Jiang, Z. H., Yang, Y., Ma, Y. T., & Xie, X. (2022). ALB-dNLR score predicts mortality in coronary artery disease patients after percutaneous coronary intervention. Frontiers in Cardiovascular Medicine, 9, 709868. https://doi.org/10.3389/fcvm.2022.709868
Yadav, J., Verma, A. K., Garg, R. K., Ahmad, K., Shiuli, Mahdi, A. A., & Srivastava, S. (2020). Gerontol. Experimental Gerontology, 141, 111092.
Yoshioka, G., Tanaka, A., Nishihira, K., Shibata, Y., & Node, K. (2021). Prognostic Impact of Serum Albumin for Developing Heart Failure Remotely after Acute Myocardial Infarction. Nutrients, 12(9), 2637. https://doi.org/10.3390/nu12092637.
Zhang, M., Han, W., Xu, Y., Li, D., & Xue, Q. (2021). Serum miR-128 serves as a potential diagnostic biomarker for Alzheimer's disease. Neuropsychiatric Disease and Treatment, 17, 269–275. https://doi.org/10.2147/NDT.S290925
Zhao, D., Chen, S., Liu, Y., Xu, Z., Shen, H., Zhang, S., Li, Y., Zhang, H., Zou, C., & Ma, X. (2022). Blood urea nitrogen-to-albumin ratio in predicting long-term mortality in patients following coronary artery bypass grafting: An analysis of the MIMIC-III database. Frontiers in Surgery, 9, 801708. https://doi.org/10.3389/fsurg.2022.801708