Omics biomarkers of antipsychotic efficacy and safety: focus on lurasidone
https://doi.org/10.37489/2588-0527-0013
EDN: PDKCVI
Abstract
Introduction. Lurasidone is an atypical antipsychotic with high affinity for 5-HT₂A, 5-HT₇, and DRD2 receptors; however, its use is limited by interindividual pharmacokinetic variability and dose-dependent adverse effects. Multi-omics approaches offer opportunities for personalized dosing.
Objective. To systematically review evidence on genomic, transcriptomic, and epigenomic biomarkers associated with lurasidone efficacy and safety.
Methods. A literature search was conducted in PubMed, Scopus, and RSCI (2010–2026) using keywords: lurasidone, pharmacogenomics, CYP3A4, HTR1A, microRNA, therapeutic drug monitoring. Of 187 initially identified publications, 83 sources were selected after screening.
Results. The rs6295 polymorphism of the HTR1A gene is associated with lurasidone efficacy in European schizophrenia patients. CYP3A4 is the main metabolizing enzyme: CYP3A4*1G (rs2242480) significantly affects clearance (CL/F: C/C — 330 L/h, T/T — 441 L/h); CYP3A4*15 requires dose adjustment up to 240 mg/day in carriers. In hepatic impairment, dose reduction to 20–40 mg/day is recommended. Transcriptomic studies identified 1907 differentially expressed genes, including modulation of PER1 and BMAL1, as well as neurotransmitter imbalance. MicroRNAs (miR-181b, miR-21, miR-122) are promising biomarkers for response prediction and CYP activity monitoring. Lurasidone monotherapy efficacy in bipolar II depression does not exceed 41.3 %.
Conclusion. The most clinically relevant markers are CYP3A4 (rs2242480, CYP3A4*15) and HTR1A (rs6295) polymorphisms, as well as microRNAs. Prospective studies are required to validate multi-omics panels in clinical practice.
Keywords
About the Authors
A. E. GareevaRussian Federation
Anna E. Gareeva — Cand. Sci. (Med.), Dr. Sci. (Biol.), Associate Professor, Leading Researcher, Laboratory of Human Molecular Genetics, Institute of Biochemistry and Genetics, Ufa Federal Research Center of the Russian Academy of Sciences, Ufa, Russian Federation; Professor, Department of Psychiatry, Narcology, and Psychotherapy, Bashkir State Medical University
Ufa
L. S. Borodina
Russian Federation
Lirida S. Borodina — Psychiatrist and Addiction Specialist
Ufa
E. G. Mikhailova
Russian Federation
Elena G. Mikhailova — Head of Department
Ufa
P. A. Gindullina
Russian Federation
Polina A. Gindullina — student
Ufa
R. G. Valinurov
Russian Federation
Rinat G. Valinurov — Dr. Sci. (Med.), Professor, Head of the Department of Psychiatry, Narcology, and Psychotherapy
Ufa
I. F. Timerbulatov
Russian Federation
Ilgiz F. Timerbulatov — Dr. Sci. (Med.), Associate Professor, Head of the Department of Narcology, Professor of the Department of Psychotherapy at the Russian Medical Academy of Continuous Professional Education; Professor of the Department of Psychiatry, Narcology, and Psychotherapy at the Faculty of Medicine at the N. A. Semashko Institute of Clinical Medicine at the Russian University of Medicine; Professor of the Department of Psychiatry, Narcology, and Psychotherapy at the Bashkir State Medical University; Professor of the Department of Psychiatry at the Central State Medical Academy of the Administrative Department of the President of the Russian Federation
Ufa, Moscow
References
1. Greenberg WM, Citrome L. Pharmacokinetics and Pharmacodynamics of Lurasidone Hydrochloride, a Second-Generation Antipsychotic: A Systematic Review of the Published Literature. Clin Pharmacokinet.2017;56(5):493-503.doi:10.1007/s40262-016-0465-5.
2. Riva MA, Albert U, de Filippis S, et al. Identification of clinical phenotypes in schizophrenia: the role of lurasidone. Ther Adv Psychopharmacol. 2021;11:20451253211012250. doi:10.1177/20451253211012250.
3. Risbood V, Lee JR, Roche-Desilets J, Fuller MA. Lurasidone: an atypical antipsychotic for schizophrenia. Ann Pharmacother. 2012;46(7-8):1033- 1046. doi:10.1345/aph.1M721.
4. Lochmann van Bennekom MW, Gijsman HJ, Zitman FG. Antipsychotic polypharmacy in psychotic disorders: a critical review of neurobiology, efficacy, tolerability and cost effectiveness. J Psychopharmacol. 2013;27(4):327-336. doi:10.1177/0269881113477709.
5. Meltzer HY, Massey BW. The role of serotonin receptors in the action of atypical antipsychotic drugs. Curr Opin Pharmacol. 2011;11(1):59-67. doi:10.1016/j.coph.2011.02.007.
6. Ishibashi T, Horisawa T, Tokuda K, et al. Pharmacological profile of lurasidone, a novel antipsychotic agent with potent 5-hydroxytryptamine 7 (5-HT7) and 5-HT1A receptor activity. J Pharmacol Exp Ther. 2010;334(1):171-181. doi:10.1124/jpet.110.167346.
7. Citrome L. Lurasidone for schizophrenia: a review of the efficacy and safety profile for this newly approved second-generation antipsychotic. Int J Clin Pract. 2011;65(2):189-210. doi:10.1111/j.1742-1241.2010.02587.x.
8. Fukuyama K, Motomura E, Okada M. Therapeutic Potential and Limitation of Serotonin Type 7 Receptor Modulation. Int J Mol Sci. 2023;24(3): 2070. doi:10.3390/ijms24032070.
9. Nakazawa S, Yokoyama C, Nishimura N, et al. Evaluation of dopamine D₂/D₃ and serotonin 5-HT₂A receptor occupancy for a novel antipsychotic, lurasidone, in conscious common marmosets using small-animal positron emission tomography. Psychopharmacology (Berl). 2013; 225(2):329-339. doi:10.1007/s00213-012-2815-9.
10. Kantrowitz JT. Targeting Serotonin 5-HT2A Receptors to Better Treat Schizophrenia: Rationale and Current Approaches. CNS Drugs. 2020;34(9):947- 959. doi:10.1007/s40263-020-00752-2.
11. Olivola M, Bassetti N, Parente S, et al. Cognitive Effects of Lurasidone and Cariprazine: A Mini Systematic Review. Curr Neuropharmacol. 2023; 21(12):2431-2446. doi:10.2174/1570159X21666230727140843.
12. Fountoulakis KN, Gazouli M, Kelsoe J, Akiskal H. The pharmacodynamic properties of lurasidone and their role in its antidepressant efficacy in bipolar disorder. Eur Neuropsychopharmacol. 2015;25(3):335-342. doi:10.1016/j.euroneuro.2014.11.010.
13. Wang YH, Liu CY, Her YN, et al. Lurasidone Successfully Reversed Clozapine-Induced Type 2 Diabetes Mellitus and Hypertriglyceridemia in a Patient With Schizophrenia. Am J Ther. 2023;30(5):e490-e491. doi:10.1097/MJT.0000000000001566.
14. Patel S, Abramowitz J. Hyperprolactinemia in a transgender male. AACE Clin Case Rep. 2020;6(1):e5-e8. doi:10.4158/ACCR-2019-0272.
15. Abavana V, Sadiq S. Association of Atypical Antipsychotics With Lipid Abnormalities in Adult Patients With Schizophrenia: A Scoping Review. Neuropsychopharmacol Rep. 2025;45(4):e70042. doi:10.1002/npr2.70042.
16. Jeong SH, Noh Y, Jang JH. Physiologically Based Pharmacokinetic Modeling of Lurasidone, an Antipsychotic Drug: Impact of CYP3A4 Polymorphisms and Hepatic Impairment on Exposure and Dose Optimization. J Clin Pharmacol. 2026;66(2):e70164. doi:10.1002/jcph.70164.
17. Caccia S, Pasina L, Nobili A. Critical appraisal of lurasidone in the management of schizophrenia. Neuropsychiatr Dis Treat. 2012;8:155-168. doi:10.2147/NDT.S18059.
18. Escudero MAG, Gutiérrez-Rojas L, Lahera G. Second Generation Antipsychotics Monotherapy as Maintenance Treatment for Bipolar Disorder: a Systematic Review of Long-Term Studies. Psychiatr Q. 2020;91(4):1047-1060. doi:10.1007/s11126-020-09753-2.
19. Miura I, Horikoshi S, Ichinose M, et al. Lurasidone for the Treatment of Schizophrenia: Design, Development, and Place in Therapy. Drug Des Devel Ther. 2023;17:3023-3031. doi:10.2147/DDDT.S366769.
20. Bruijnzeel D, Yazdanpanah M, Suryadevara U, Tandon R. Lurasidone in the treatment of schizophrenia: a critical evaluation. Expert Opin Pharmacother. 2015;16(10):1559-1565. doi:10.1517/14656566.2015.1058780.
21. Czerwensky F, Leucht S, Steimer W. CYP1A2*1D and *1F polymorphisms have a significant impact on olanzapine serum concentrations. Ther Drug Monit. 2015;37(2):152-160. doi:10.1097/FTD.0000000000000119.
22. Ivanova SA, Filipenko ML, Vyalova NM, et al. CYP1A2 and CYP2D6 Gene Polymorphisms in Schizophrenic Patients with Neuroleptic Drug-Induced Side Effects. Bull Exp Biol Med. 2016;160(5):687-690. doi:10.1007/s10517-016-3250-4 I.
23. Piatkov I, Caetano D, Assur Y, et al. CYP2C19*17 protects against metabolic complications of clozapine treatment. World J Biol Psychiatry. 2017;18(7):521-527.doi:10.1080/15622975.2017.1347712.
24. Gareeva AE, Nasibullin TR, Pozdnyakov SA, et al. Personalized Pharmacotherapy with Sertraline in Patients with Anxiety–Depressive Disorder Based on Omics Biomarkers. Mol Biol (Mosk). 2025;59(6):928-937. doi:10.7868/S303455532506004110.1134/S0026893325700384 (In Russ.).
25. Hashimoto H, Toide K, Kitamura R, et al. Gene structure of CYP3A4, an adult-specific form of cytochrome P450 in human livers, and its transcriptional control. Eur J Biochem. 1993;218(2):585- 595. doi:10.1111/j.1432-1033.1993.tb18412.x.
26. Inoue T, Masuda T, Sano F, Maruyama H. Lurasidone for bipolar I depression with comorbid anxiety symptoms: Post-hoc-analysis of randomized, placebo-controlled studies. J Affect Disord. 2025;385:119348. doi:10.1016/j.jad.2025.05.008.
27. Lamba JK, Lin YS, Thummel K, et al. Common allelic variants of cytochrome P4503A4 and their prevalence in different populations. Pharmacogenetics. 2002;12(2):121-132. doi:10.1097/00008571-200203000-00006.
28. Westlind-Johnsson A, Malmebo S, Johansson A, et al. Comparative analysis of CYP3A expression in human liver suggests only a minor role for CYP3A5 in drug metabolism. Drug Metab Dispos. 2003;31(6):755-761. doi:10.1124/dmd.31.6.755.
29. Li Q, Wang J, Wang ZL, et al. The impacts of CYP3A4 genetic polymorphism and drug interactions on the metabolism of lurasidone. Biomed Pharmacother. 2023;168:115833. doi:10.1016/j.biopha.2023.115833.
30. Citrome L. Lurasidone in schizophrenia: new information about dosage and place in therapy. Adv Ther. 2012;29(10):815-825. doi:10.1007/s12325-012-0052-6.
31. Findling RL, Goldman R, Chiu YY, et al. Pharmacokinetics and Tolerability of Lurasidone in Children and Adolescents With Psychiatric Disorders. Clin Ther. 2015;37(12):2788-2797. doi:10.1016/j.clinthera.2015.11.001.
32. Kato T, Ishigooka J, Miyajima M, et al. Double-blind, placebo-controlled study of lurasidone monotherapy for the treatment of bipolar I depression. Psychiatry Clin Neurosci. 2020;74(12):635- 644. doi:10.1111/pcn.13137.
33. Lu M-L, Lane H-Y. Clinically significant interactions with antipsychotics. In: Jann MW, Penzak SR, Cohen LJ editors. Applied Clinical Pharmacokinetics and Pharmacodynamics of Psychopharmacological Agents. Springer International Publishing; 2016:p.397-421.
34. Preskorn S, Ereshefsky L, Chiu YY, et al. Effect of food on the pharmacokinetics of lurasidone: results of two randomized, open-label, crossover studies. Hum Psychopharmacol. 2013;28(5):495- 505. doi:10.1002/hup.2338.
35. Mauri MC, Paletta S, Di Pace C, et al. Clinical Pharmacokinetics of Atypcal Antipsychotics: An Update. Clin Pharmacokinet. 2018;57(12):1493- 1528. doi:10.1007/s40262-018-0664-3.
36. Werk AN, Cascorbi I. Functional gene variants of CYP3A4. Clin Pharmacol Ther. 2014;96(3):340- 348. doi:10.1038/clpt.2014.129.
37. Gunther M, Dopheide JA. Antipsychotic Safety in Liver Disease: A Narrative Review and Practical Guide for the Clinician. J Acad Consult Liaison Psychiatry. 2023;64(1):73-82. doi:10.1016/j.jaclp.2022.09.006.
38. Wischneski I, Barreto PAPM, Tardelli VS, Roza TH. Kidney and Liver Impairment. In: Passos IC, Berk M,Kapczinski F eds. Bipolar Disorder: An Evidence-Based Clinical Guide. Springer Nature; 2025:733-759.
39. Freriksen JJM, van der Heijden JEM, de HoopSommen MA, et al. Physiologically Based Pharmacokinetic (PBPK) Model-Informed Dosing Guidelines for Pediatric Clinical Care: A Pragmatic Approach for a Special Population. Paediatr Drugs. 2023;25(1):5-11. doi:10.1007/s40272-022-00535-w.
40. Marques L, Costa B, Pereira M, et al. Advancing Precision Medicine: A Review of Innovative In Silico Approaches for Drug Development, Clinical Pharmacology and Personalized Healthcare. Pharmaceutics. 2024;16(3):332. doi:10.3390/pharmaceutics16030332.
41. Arranz MJ, Salazar J, Hernández MH. Pharmacogenetics of antipsychotics: Clinical utility and implementation. Behav Brain Res. 2021;401:113058. doi:10.1016/j.bbr.2020.113058.
42. Hiemke C. Therapeutic drug monitoring in neuropsychopharmacology: does it hold its promises?. Eur Arch Psychiatry Clin Neurosci. 2008;258 Suppl 1:21-27. doi:10.1007/s00406-007-1005-y.
43. Hiemke C, Bergemann N, Clement HW, et al. Consensus Guidelines for Therapeutic Drug Monitoring in Neuropsychopharmacology: Update 2017.Pharmacopsychiatry.2018;51(1-02):e1. doi: 10.1055/s-0037-1600991.
44. Gareeva A.E., Borodina L.S., Pozdnyakov S.A., Timerbulatov I.F. Pharmacogenomic and Pharmacometabolomic Biomarkers of the Efficacy and Safety of Antidepressants: Focus onSelective Serotonin Reuptake Inhibitors. Neuroscience and Behavioral Physiology. 2024;54(8);1205-1214. doi:10.1007/s11055-024-01716-5. (In Russ.).
45. Schoretsanitis G, Paulzen M, Unterecker S, et al. TDM in psychiatry and neurology: A comprehensive summary of the consensus guidelines for therapeutic drug monitoring in neuropsychopharmacology, update 2017; a tool for clinicians. World J Biol Psychiatry. 2018;19(3):162-174. doi:10.1080/15622975.2018.1439595.
46. Li Q, Wang J, Wang ZL, et al. The impacts of CYP3A4 genetic polymorphism and drug interactions on the metabolism of lurasidone. Biomed Pharmacother. 2023;168:115833. doi:10.1016/j.biopha.2023.115833.
47. Hu GX, Dai DP, Wang H, et al. Systematic screening for CYP3A4 genetic polymorphisms in a Han Chinese population. Pharmacogenomics. 2017;18(4):369-379. doi:10.2217/pgs-2016-0179.
48. Zhu X, Yun W, Sun X, et al. Effects of major transporter and metabolizing enzyme gene polymorphisms on carbamazepine metabolism in Chinese patients with epilepsy. Pharmacogenomics. 2014;15(15):1867-1879. doi:10.2217/pgs.14.142.
49. Ma CL, Jiao Z, Wu XY, et al. Association between PK/PD-involved gene polymorphisms and carbamazepine-individualized therapy. Pharmacogenomics. 2015;16(13):1499-1512. doi:10.2217/pgs.15.94.
50. Zhao GX, Zhang Z, Cai WK, et al. Associations between CYP3A4, CYP3A5 and SCN1A polymorphisms and carbamazepine metabolism in epilepsy: A meta-analysis. Epilepsy Res. 2021;173: 106615. doi:10.1016/j.eplepsyres.2021.106615.
51. Dai C, Lin M, Xu N, et al. The impact of CYP3A4 rs2242480 on oral lurasidone: A population pharmacokinetic model and exposure-efficacy analysis in Chinese bipolar depression patients. J Affect Disord. 2026;394(Pt B):120588. doi:10.1016/j.jad.2025.120588.
52. He BX, Shi L, Qiu J, et al. The effect of CYP3A4*1G allele on the pharmacokinetics of atorvastatin in Chinese Han patients with coronary heart disease. J Clin Pharmacol. 2014;54(4): 462-467. doi:10.1002/jcph.229.
53. Williams ML, Kannankeril PJ, Breeyear JH, et al. Effect of CYP3A5 and CYP3A4 Genetic Variants on Fentanyl Pharmacokinetics in a Pediatric Population. Clin Pharmacol Ther. 2022;111(4): 896-908. doi:10.1002/cpt.2506.
54. Dai C, Fu Y, Li X, et al. Clinical efficacy and safety of vortioxetine as an adjuvant drug for patients with bipolar depression. J Zhejiang Univ Sci B. 2025;26(1):26-38. doi:10.1631/jzus.B2400470.
55. Takaesu Y, Takeshima M, Watanabe K. Effectiveness and Tolerability of Lurasidone for Bipolar Types I and II and Other Specified Bipolar Depression: A 12-Week Observational Study. J Clin Psychopharmacol. 2022;42(5):485-488. doi:10.1097/JCP.0000000000001590.
56. Crisafulli C, Chiesa A, Han C, et al. Case-control association study for 10 genes in patients with schizophrenia: influence of 5HTR1A variation rs10042486 on schizophrenia and response to antipsychotics. Eur Arch Psychiatry Clin Neurosci. 2012;262(3):199-205. doi:10.1007/s00406-011-0278-3.
57. Yoshikawa A, Li J, Meltzer HY. A functional HTR1A polymorphism, rs6295, predicts shortterm response to lurasidone: confirmation with meta-analysis of other antipsychotic drugs. Pharmacogenomics J. 2020;20(2):260-270. doi:10.1038/s41397-019-0101-5.
58. Yoshikawa A, Li J, Alliey-Rodriguez N, Meltzer HY. Genetic markers of early response to lurasidone in acute schizophrenia. Pharmacogenomics J. 2025;25(2):3. doi:10.1038/s41397-024-00360-z.
59. Ruderfer DM, Charney AW, Readhead B, et al. Polygenic overlap between schizophrenia risk and antipsychotic response: a genomic medicine approach. Lancet Psychiatry. 2016;3(4):350-357. doi:10.1016/S2215-0366(15)00553-2.
60. Li J, Loebel A, Meltzer HY. Identifying the genetic risk factors for treatment response to lurasidone by genome-wide association study: A meta-analysis of samples from three independent clinical trials. Schizophr Res. 2018;199:203-213. doi:10.1016/j.schres.2018.04.006.
61. Sainz J, Prieto C, Ruso-Julve F, Crespo-Facorro B. Blood Gene Expression Profile Predicts Response to Antipsychotics. Front Mol Neurosci. 2018;11:73. doi:10.3389/fnmol.2018.00073.
62. Ruso-Julve F, Pombero A, Pilar-Cuéllar F, et al. Dopaminergic control of ADAMTS2 expression through cAMP/CREB and ERK: molecular effects of antipsychotics. Transl Psychiatry. 2019;9(1):306. doi:10.1038/s41398-019-0647-7.
63. Huang HS, Matevossian A, Whittle C, et al. Prefrontal dysfunction in schizophrenia involves mixed-lineage leukemia 1-regulated histone methylation at GABAergic gene promoters. J Neurosci. 2007;27(42):11254-11262. doi:10.1523/JNEUROSCI.3272-07.2007.
64. Melka MG, Castellani CA, Laufer BI, et al. Olanzapine induced DNA methylation changes support the dopamine hypothesis of psychosis. J Mol Psychiatry. 2013;1(1):19. doi:10.1186/2049-9256-1-19.
65. Dong E, Nelson M, Grayson DR, et al. Clozapine and sulpiride but not haloperidol or olanzapine activate brain DNA demethylation. Proc Natl Acad Sci U S A. 2008;105(36):13614-9. doi: 10.1073/pnas.0805493105.
66. Calabrese F, Savino E, Papp M, et al. Chronic mild stress-induced alterations of clock gene expression in rat prefrontal cortex: modulatory effects of prolonged lurasidone treatment. Pharmacol Res. 2016;104:140-150. doi:10.1016/j.phrs.2015.12.023.
67. Colita CI, Hermann DM, Filfan M, et al. Optimizing Chronotherapy in Psychiatric Care: The Impact of Circadian Rhythms on Medication Timing and Efficacy. Clocks Sleep. 2024;6(4):635-655. doi:10.3390/clockssleep6040043.
68. Li W, Wang F, Feng Z, et al. Lurasidone induces developmental toxicity and behavioral impairments in zebrafish embryos. Front Psychiatry. 2025;16:1581524. doi:10.3389/fpsyt.2025.1581524.
69. Binder EB. The role of FKBP5, a co-chaperone of the glucocorticoid receptor in the pathogenesis and therapy of affective and anxiety disorders. Psychoneuroendocrinology. 2009;34 Suppl 1:S186- S195. doi:10.1016/j.psyneuen.2009.05.021.
70. Ferrer A, Costas J, Labad J, et al. FKBP5 polymorphisms and hypothalamic-pituitary-adrenal axis negative feedback in major depression and obsessive-compulsive disorder. J Psychiatr Res. 2018;104:227-234. doi:10.1016/j.jpsychires.2018.08.003.
71. Kozomara A, Griffiths-Jones S. miRBase: integrating microRNA annotation and deep-sequencing data. Nucleic Acids Res. 2011;39:D152-D157. doi:10.1093/nar/gkq1027.
72. Swathy B, Banerjee M. Haloperidol induces pharmacoepigenetic response by modulating miRNA expression, global DNA methylation and expression profiles of methylation maintenance genes and genes involved in neurotransmission in neuronal cells. PLoS One. 2017;12(9):e0184209. doi: 10.1371/journal.pone.0184209.
73. Santarelli DM, Liu B, Duncan CE, et al. Gene-microRNA interactions associated with antipsychotic mechanisms and the metabolic side effects of olanzapine. Psychopharmacology (Berl). 2013; 227(1):67-78. doi:10.1007/s00213-012-2939-y.
74. de Bartolomeis A, Iasevoli F, Tomasetti C, Buonaguro EF. MicroRNAs in Schizophrenia: Implications for Synaptic Plasticity and Dopamine-Glutamate Interaction at the Postsynaptic Density. New Avenues for Antipsychotic Treatment Under a Theranostic Perspective. Mol Neurobiol. 2015; 52(3):1771-1790. doi:10.1007/s12035-014-8962-8.
75. Reynolds GP. Pharmacogenetic Aspects of Antipsychotic Drug-induced Weight Gain - A Critical Review. Clin Psychopharmacol Neurosci. 2012;10(2):71-77. doi:10.9758/cpn.2012.10.2.71.
76. Alacam H, Akgun S, Akca H, et al. miR-181b-5p, miR-195-5p and miR-301a-3p are related with treatment resistance in schizophrenia. Psychiatry Res. 2016;245:200-206. doi:10.1016/j.psychres.2016.08.037.
77. Song HT, Sun XY, Zhang L, et al. A preliminary analysis of association between the down-regulation of microRNA-181b expression and symptomatology improvement in schizophrenia patients before and after antipsychotic treatment. J Psychiatr Res. 2014;54:134-140. doi:10.1016/j.jpsychires.2014.03.008.
78. Chen SD, Sun XY, Niu W, et al. A preliminary analysis of microRNA-21 expression alteration after antipsychotic treatment in patients with schizophrenia. Psychiatry Res. 2016;244:324-332. doi:10.1016/j.psychres.2016.04.087.
79. van der Weide J, Steijns LS, van Weelden MJ. The effect of smoking and cytochrome P450 CYP1A2 genetic polymorphism on clozapine clearance and dose requirement. Pharmacogenetics. 2003;13(3): 169-172. doi:10.1097/00008571-200303000-00006.
80. Gill P, Bhattacharyya S, McCullough S, et al. MicroRNA regulation of CYP1A2, CYP3A4 and CYP2E1 expression in acetaminophen toxicity. Sci Rep. 2017;7(1):12331. doi:10.1038/s41598-017-11811-y.
81. Chowdhary V, Teng KY, Thakral S, et al. miRNA-122 Protects Mice and Human Hepatocytes from Acetaminophen Toxicity by Regulating Cytochrome P450 Family 1 Subfamily A Member 2 and Family 2 Subfamily E Member 1 Expression. Am J Pathol. 2017;187(12):2758-2774. doi:10.1016/j.ajpath.2017.08.026.
82. Tang X, Chen S. Epigenetic Regulation of Cytochrome P450 Enzymes and Clinical Implication. Curr Drug Metab. 2015;16(2):86-96. doi:10.2174/138920021602150713114159.
83. Danek PJ, Daniel WA. The Novel Atypical Antipsychotic Lurasidone Affects Cytochrome P450 Expression in the Liver and Peripheral Blood Lymphocytes. Int J Mol Sci. 2023;24(23):16796. doi:10.3390/ijms242316796.
84. Danek PJ, Kuban W, Daniel WA. The Effect of Chronic Iloperidone Treatment on Cytochrome P450 Expression and Activity in the Rat Liver: Involvement of Neuroendocrine Mechanisms. Int J Mol Sci. 2021;22(16):8447. doi:10.3390/ijms22168447.
85. Danek PJ, Bromek E, Daniel WA. The Influence of Long-Term Treatment with Asenapine on Liver Cytochrome P450 Expression and Activity in the Rat. The Involvement of Different Mechanisms. Pharmaceuticals (Basel). 2021;14(7):629. doi:10.3390/ph14070629.
86. Danek PJ, Daniel WA. The effect of new atypical antipsychotic drugs on the expression of transcription factors regulating cytochrome P450 enzymes in rat liver. Pharmacol Rep. 2024;76(4): 895-901. doi:10.1007/s43440-024-00608-2.
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For citations:
Gareeva A.E., Borodina L.S., Mikhailova E.G., Gindullina P.A., Valinurov R.G., Timerbulatov I.F. Omics biomarkers of antipsychotic efficacy and safety: focus on lurasidone. Pharmacogenetics and Pharmacogenomics. 2026;(2):82-94. (In Russ.) https://doi.org/10.37489/2588-0527-0013. EDN: PDKCVI
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