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.
Abstract:
Leprosy continues to be the belligerent public health hazard for the causation of high disability and eventual morbidity cases with stable prevalence rates, even with treatment by the on-going multidrug therapy (MDT). Today, dapsone (DDS) resistance has led to fear of leprosy in more unfortunate people of certain developing countries. Herein, DDS was chemically conjugated with five phytochemicals independently as dapsone-phytochemical conjugates (DPCs) based on azo-coupling reaction. Possible biological activities were verified with computational chemistry and quantum mechanics by molecular dynamics simulation program before chemical synthesis and spectral characterizations viz., proton-HNMR, FTIR, UV and LC-MS. The in vivo antileprosy activity was monitored using the 'mouse-foot-pad propagation method', with WHO recommended concentration 0.01% mg/kg each DPC for 12 weeks, and the host-toxicity testing of the active DPC4 was seen in cultured-human-lymphocytes in vitro. One-log bacilli cells in DDS-resistant infected mice footpads decreased by the DPC4, and no bacilli were found in the DDS-sensitive mice hind pads. Additionally, the in vitro host toxicity study also confirmed that the DCP4 up to 5,000 mg/L level was safety for oral administration, since a minor number of dead cells were found in red color under a fluorescent microscope. Several advanced bioinformatics tools could help locate the potential chemical entity, thereby reducing the time and resources required for in vitro and in vitro tests. DPC4 could be used in place of DDS in MDT, evidenced from in vivo antileprosy activity and in vitro host toxicity study.
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.
More Related Videos
10:32Optimized Protocols for Mycobacterium leprae Strain Management: Frozen Stock Preservation and Maintenance in Athymic Nude Mice
Published on: March 23, 2014
08:48Development of a Backbone Cyclic Peptide Library as Potential Antiparasitic Therapeutics Using Microwave Irradiation
Published on: January 26, 2016
Related Concept Videos
Defense Against Bacterial Pathogens
Phagocytes
Phagocytes are the frontline soldiers of the immune system. They include neutrophils and macrophages. Neutrophils are the most abundant type of white blood cell and are quickly mobilized to the site of infection. Macrophages are larger cells that patrol...
Aryldiazonium Salts to Azo Dyes: Diazo Coupling
Combined Effects of Drugs: Synergism
Such synergistic combinations...
