Computer-aided synthesis of dapsone-phytochemical conjugates against dapsone-resistant Mycobacterium leprae

Shasank S Swain1,2, Sudhir K Paidesetty3, Budheswar Dehury4,5

  • 1Central Research Laboratory, Institute of Medical Sciences and Sum Hospital, Siksha 'O' Anusandhan Deemed to be University, Kalinga Nagar, Bhubaneswar, 751003, Odisha, India. swain.shasanksekhar86@gmail.com.

Scientific Reports
|April 24, 2020
PubMed

Insights

New dapsone-phytochemical conjugates (DPCs) show promise against leprosy. DPC4 effectively reduced leprosy bacilli in mice and demonstrated safety, suggesting it could replace dapsone in multidrug therapy.

Area of Science:

  • Medicinal Chemistry
  • Pharmacology
  • Computational Chemistry

Background:

  • Leprosy remains a significant public health issue, causing disability and morbidity.
  • Existing multidrug therapy (MDT) faces challenges due to dapsone (DDS) resistance.
  • There is a critical need for novel antileprosy agents.

Purpose of the Study:

  • To synthesize and evaluate dapsone-phytochemical conjugates (DPCs) as potential antileprosy treatments.
  • To investigate the efficacy and safety of DPC4, a novel conjugate, against DDS-resistant leprosy.
  • To explore the use of computational methods in identifying potential drug candidates.

Main Methods:

  • Chemical synthesis of five DPCs via azo-coupling reaction.
  • Computational chemistry and molecular dynamics simulations for activity prediction.
  • In vivo antileprosy activity testing using the mouse-foot-pad method.
  • In vitro host-toxicity assessment using cultured human lymphocytes.

Main Results:

  • DPC4 demonstrated significant reduction of leprosy bacilli in DDS-resistant infected mouse footpads.
  • No bacilli were detected in DDS-sensitive mice treated with DPC4.
  • In vitro toxicity studies confirmed DPC4's safety for oral administration up to 5,000 mg/L.

Conclusions:

  • DPC4 exhibits potent in vivo antileprosy activity and favorable in vitro safety.
  • DPC4 represents a promising alternative to DDS in MDT for combating leprosy.
  • Bioinformatics and computational tools accelerate the discovery of novel therapeutic agents.

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