Oligonucleotide therapeutics and their chemical modification strategies for clinical applications

被引:3
|
作者
Kim, Hyunsook [1 ]
Kim, Sujeong [1 ]
Lee, Dayoung [1 ]
Lee, Dahye [1 ]
Yoon, Jiyeon [1 ]
Lee, Hyukjin [1 ]
机构
[1] Ewha Womans Univ, Coll Pharm, Grad Sch Pharmaceut Sci, Seoul 03760, South Korea
基金
新加坡国家研究基金会;
关键词
Antisense oligonucleotide; Gene regulation; Nucleic acid analogue; Oligonucleotide therapeutics; Small interfering RNA; microRNA; LOCKED NUCLEIC-ACID; ANTISENSE OLIGONUCLEOTIDES; IN-VIVO; HIGH-AFFINITY; MOLECULAR-MECHANISM; ANTIVIRAL ACTIVITY; CONJUGATED SIRNA; MAMMALIAN-CELLS; MESSENGER-RNA; PHASE; 1B;
D O I
10.1007/s40005-024-00669-8
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
BackgroundOligonucleotide therapeutics have emerged as a promising and dynamic class of pharmaceutical agents with remarkable potential for treating a wide spectrum of genetic and acquired diseases. These therapeutic entities, comprising short nucleic acid sequences of either ribonucleic acids (RNA) or deoxyribonucleic acids (DNA), offer the distinct advantage of precise targeting and the ability to interfere with disease-causing genes or proteins. Despite their inherent therapeutic potential, their clinical utility has been hampered by various challenges, including rapid degradation, limited cellular uptake, and unintended immune responses.Area coveredChemical modification strategies have been extensively explored to overcome these limitations and enhance their pharmacological properties. In this review, we provide a comprehensive overview of oligonucleotide therapeutics and their associated chemical modification approaches, highlighting their potential in the clinical realm.Expert opinionBy elucidating the progress made in chemical modifications and their implications for clinical translation, we seek to highlight the pivotal role of these strategies in realizing the full therapeutic potential of oligonucleotide-based therapies for treating a wide range of diseases.
引用
收藏
页码:415 / 433
页数:19
相关论文
共 50 条
  • [41] Oligonucleotide Analogues as Modulators of the Expression and Function of Noncoding RNAs (ncRNAs): Emerging Therapeutics Applications
    Avitabile, Concetta
    Cimmino, Amelia
    Romanelli, Alessandra
    JOURNAL OF MEDICINAL CHEMISTRY, 2014, 57 (24) : 10220 - 10240
  • [42] Micafungin: pharmacology, experimental therapeutics and clinical applications
    Groll, AH
    Stergiopoulou, T
    Roilides, E
    Walsh, TJ
    EXPERT OPINION ON INVESTIGATIONAL DRUGS, 2005, 14 (04) : 489 - 509
  • [43] Photodynamic therapeutics: basic principles and clinical applications
    Sharman, WM
    Allen, CM
    van Lier, JE
    DRUG DISCOVERY TODAY, 1999, 4 (11) : 507 - 517
  • [44] Clinical applications of arterial stiffness: Therapeutics and pharmacology
    Laurent, S
    Kingwell, B
    Bank, A
    Weber, M
    Struijker-Boudier, H
    AMERICAN JOURNAL OF HYPERTENSION, 2002, 15 (05) : 453 - 458
  • [45] Development and Clinical Applications of Nucleic Acid Therapeutics
    Aishwarya, Veenu
    Kalota, Anna
    Gewirtz, Alan M.
    NUCLEIC ACID DRUGS, 2012, 249 : 153 - 176
  • [46] Recent strategies towards the surface modification of liposomes: an innovative approach for different clinical applications
    Khan, Amjad Ali
    Allemailem, Khaled S.
    Almatroodi, Saleh A.
    Almatroudi, Ahmed
    Rahmani, Arshad Husain
    3 BIOTECH, 2020, 10 (04)
  • [47] Recent strategies towards the surface modification of liposomes: an innovative approach for different clinical applications
    Amjad Ali Khan
    Khaled S. Allemailem
    Saleh A. Almatroodi
    Ahmed Almatroudi
    Arshad Husain Rahmani
    3 Biotech, 2020, 10
  • [48] Peptide and oligonucleotide therapeutics: A chromatographers viewpoint
    McGinley, Michael
    CHIMICA OGGI-CHEMISTRY TODAY, 2018, 36 (05) : 8 - 8
  • [49] Oligonucleotide therapeutics — Novel cardiovascular targets
    Jeffrey M. Isner
    Nature Medicine, 1997, 3 : 834 - 835
  • [50] Chemical strategies to overcome resistance against targeted anticancer therapeutics
    Pisa, Rudolf
    Kapoor, Tarun M.
    NATURE CHEMICAL BIOLOGY, 2020, 16 (08) : 817 - 825