Jove
Visualize
Contact Us
JoVE
x logofacebook logolinkedin logoyoutube logo
ABOUT JoVE
OverviewLeadershipBlogJoVE Help Center
AUTHORS
Publishing ProcessEditorial BoardScope & PoliciesPeer ReviewFAQSubmit
LIBRARIANS
TestimonialsSubscriptionsAccessResourcesLibrary Advisory BoardFAQ
RESEARCH
JoVE JournalMethods CollectionsJoVE Encyclopedia of ExperimentsArchive
EDUCATION
JoVE CoreJoVE BusinessJoVE Science EducationJoVE Lab ManualFaculty Resource CenterFaculty Site
Terms & Conditions of Use
Privacy Policy
Policies

Related Concept Videos

Electron Transport Chain: Complex I and II01:46

Electron Transport Chain: Complex I and II

14.9K
The mitochondrial electron transport chain (ETC) is the main energy generation system in the eukaryotic cells. However, mitochondria also produce cytotoxic reactive oxygen species (ROS) due to the large electron flow during oxidative phosphorylation. While Complex I is one of the primary sources of superoxide radicals, ROS production by Complex II is uncommon and may only be observed in cancer cells with mutated complexes.
ROS generation is regulated and maintained at moderate levels necessary...
14.9K
Ligand Binding and Linkage00:49

Ligand Binding and Linkage

4.9K
Allosteric proteins have more than one ligand binding site; the binding of a ligand to any of these sites influences the binding of ligands to the other sites. When a protein is allosteric, its binding sites are called coupled or linked.  In the case of enzymes, the site that binds to the substrate is known as the active site and the other site is known as the regulatory site. When a ligand binds to the regulatory site, this leads to conformational changes in the protein that can influence...
4.9K
Electron Transport Chain: Complex III and IV01:43

Electron Transport Chain: Complex III and IV

8.0K
During the electron transport chain, electrons from NADH and FADH2 are first transferred to complexes I and II, respectively. These two complexes then transfer the electrons to ubiquinol, which carries them further to complex III. Complex III passes the electrons across the intermembrane space to Cyt c, which carries them further to complex IV. Complex IV donates electrons to oxygen and reduces it to water. As electrons pass through complexes I, III, and IV, the energy released aids the pumping...
8.0K
Formation of Complex Ions03:45

Formation of Complex Ions

23.9K
A type of Lewis acid-base chemistry involves the formation of a complex ion (or a coordination complex) comprising a central atom, typically a transition metal cation, surrounded by ions or molecules called ligands. These ligands can be neutral molecules like H2O or NH3, or ions such as CN− or OH−. Often, the ligands act as Lewis bases, donating a pair of electrons to the central atom. These types of Lewis acid-base reactions are examples of a broad subdiscipline called coordination...
23.9K
Sulfur Assimilation01:20

Sulfur Assimilation

64
Sulfur is an essential element in biological systems, contributing to synthesizing key biomolecules, including amino acids such as cysteine and methionine, and cofactors such as coenzyme A and biotin. Microorganisms primarily assimilate sulfur as sulfate (SO₄²⁻) from the environment, which must undergo a series of biochemical transformations before it can be incorporated into cellular components. As sulfate is highly oxidized, it must undergo assimilatory sulfate reduction to...
64
Structure and Nomenclature of Thiols and Sulfides02:17

Structure and Nomenclature of Thiols and Sulfides

5.0K
Thiols and sulfides are sulfur analogs of alcohols and ethers, respectively, where the sulfur atom takes the place of the oxygen atom. Thus, thiols are generally represented as RSH, where R is an alkyl substituent and —SH is the functional group. On the other hand, in sulfides, the central sulfur atom is bonded to two hydrocarbon groups on either side. Depending upon the type of group, sulfides can be either symmetrical or asymmetrical. Both thiols and sulfides display a bent geometry,...
5.0K

You might also read

Related Articles

Articles linked to this work by shared authors, journal, and citation graph.

Sort by
Same author

Mechanistic implications of excited high-spin states, spin-spin coupling, and differential [2Fe-2S]<sup>+</sup> cluster temperature relaxations in the electron-bifurcating NfnABC from <i>Thermococcus sibiricus</i>.

Dalton transactions (Cambridge, England : 2003)·2026
Same author

Heme oxygenase-like dimetal oxidases and oxygenases.

Biochemical Society transactions·2026
Same author

Photoinduced Electron Transfer Informs on Pathway Coupling in Flavin-Based Electron Bifurcation.

ACS bio & med chem Au·2026
Same author

A photosynthetic-respiratory electron transport chain chimera based on photosystem I and cytochrome <i>c</i> oxidase on graphene oxide.

Proceedings of the National Academy of Sciences of the United States of America·2026
Same author

Provision of a Redox Donor to Oxy-Ferrous PrnB Is Required for Pyrrolnitrin Synthesis.

Biochemistry·2025
Same author

A [FeFe] Hydrogenase-Rubrerythrin Chimeric Enzyme Functions to Couple H<sub>2</sub> Oxidation to Reduction of H<sub>2</sub>O<sub>2</sub> in the Foodborne Pathogen <i>Clostridium perfringens</i>.

Journal of the American Chemical Society·2025

Related Experiment Video

Updated: Aug 27, 2025

EPR Monitored Redox Titration of the Cofactors of Saccharomyces cerevisiae Nar1
06:01

EPR Monitored Redox Titration of the Cofactors of Saccharomyces cerevisiae Nar1

Published on: November 26, 2014

13.6K

Site-Differentiated Iron-Sulfur Cluster Ligation Affects Flavin-Based Electron Bifurcation Activity.

Courtney E Wise1, Anastasia E Ledinina1, Carolyn E Lubner1

  • 1Biosciences Center, National Renewable Energy Laboratory, Golden, CO 80401, USA.

Metabolites
|September 23, 2022
PubMed
Summary

This study investigated how specific structural features in an enzyme called NfnSL affect its ability to perform a specialized energy conversion process known as electron bifurcation. NfnSL uses a unique iron-sulfur cluster with a non-cysteinyl ligand to coordinate the transfer of electrons to two different substrates. The researchers created a modified version of the enzyme by replacing one of these ligands with a cysteine and compared its activity to the original enzyme. They found that the change disrupted the enzyme’s ability to maintain the correct balance of electron transfer. This suggests that the specific composition of iron-sulfur cluster ligands is important for the enzyme’s function. The findings may help scientists better understand how to control redox reactions in other enzymes for applications in metabolic engineering.

Keywords:
biochemistrybioenergeticsbiological electron transferelectron bifurcationenergy conservationflavoenzymeiron–sulfur clustermetabolismthermodynamicsiron-sulfur cluster biochemistryelectron bifurcation mechanismredox enzyme activitymetabolic engineering

Frequently Asked Questions

More Related Videos

Monitoring the Reductive and Oxidative Half-Reactions of a Flavin-Dependent Monooxygenase using Stopped-Flow Spectrophotometry
12:08

Monitoring the Reductive and Oxidative Half-Reactions of a Flavin-Dependent Monooxygenase using Stopped-Flow Spectrophotometry

Published on: March 18, 2012

15.2K
Electrochemical Detection of Deuterium Kinetic Isotope Effect on Extracellular Electron Transport in Shewanella oneidensis MR-1
09:00

Electrochemical Detection of Deuterium Kinetic Isotope Effect on Extracellular Electron Transport in Shewanella oneidensis MR-1

Published on: April 16, 2018

10.2K

Related Experiment Videos

Last Updated: Aug 27, 2025

EPR Monitored Redox Titration of the Cofactors of Saccharomyces cerevisiae Nar1
06:01

EPR Monitored Redox Titration of the Cofactors of Saccharomyces cerevisiae Nar1

Published on: November 26, 2014

13.6K
Monitoring the Reductive and Oxidative Half-Reactions of a Flavin-Dependent Monooxygenase using Stopped-Flow Spectrophotometry
12:08

Monitoring the Reductive and Oxidative Half-Reactions of a Flavin-Dependent Monooxygenase using Stopped-Flow Spectrophotometry

Published on: March 18, 2012

15.2K
Electrochemical Detection of Deuterium Kinetic Isotope Effect on Extracellular Electron Transport in Shewanella oneidensis MR-1
09:00

Electrochemical Detection of Deuterium Kinetic Isotope Effect on Extracellular Electron Transport in Shewanella oneidensis MR-1

Published on: April 16, 2018

10.2K

Area of Science:

  • Bioenergetics and electron transport mechanisms
  • Enzyme cofactor biochemistry
  • Metabolic engineering

Background:

Electron bifurcation is a specialized energy conversion process in which a single electron is split into two electrons with different redox potentials. This mechanism is crucial for maintaining energy efficiency in anaerobic and photosynthetic organisms. While the general principle of electron bifurcation is well established, the precise molecular determinants that govern its fidelity remain unclear. NfnSL is a bifurcating enzyme that couples the reduction of NAD+ with the reduction of ferredoxin, using NADPH as an electron donor. However, the role of site-specific cofactor ligands in maintaining the coordination of these reactions is poorly understood. Prior research has shown that iron-sulfur clusters are common in redox enzymes, but their differentiated liganding in bifurcating systems is not well characterized. This gap motivated the investigation of how site-differentiated ligands influence the fidelity of electron bifurcation in NfnSL.

Purpose Of The Study:

This study aimed to investigate the functional role of site-differentiated iron-sulfur cluster ligands in the NfnSL enzyme. The enzyme’s ability to perform electron bifurcation is tightly regulated, and any deviation from optimal conditions can lead to energy loss. The specific problem addressed is the lack of understanding about how non-cysteinyl ligands at iron-sulfur clusters affect the coordination of electron transfer pathways. The motivation stems from the need to clarify the biochemical basis of electron bifurcation fidelity. By comparing wild-type NfnSL with a variant in which one ligand is replaced, the study sought to determine the impact of ligand differentiation on enzyme activity. This approach allows for a direct assessment of how structural changes influence functional outcomes. The goal was to provide a mechanistic explanation for the observed biochemical differences.

Main Methods:

The study employed a combination of biochemical assays and kinetic measurements to evaluate the impact of site-differentiated ligands on NfnSL activity. Wild-type and variant enzymes were prepared and characterized using dye-based steady-state kinetics to assess electron transfer rates. Substrate-binding experiments were conducted to determine how ligand changes affect substrate interactions. Biochemical activity assays measured the enzyme’s ability to perform bifurcated electron transfer under controlled conditions. Electron distribution across the enzyme was also assessed to evaluate the coordination of the two electron transfer pathways. The experimental design allowed for a direct comparison between wild-type and modified enzymes. The use of multiple complementary techniques ensured a comprehensive evaluation of enzyme behavior. These methods provided a detailed view of how structural modifications influence functional outcomes.

Main Results:

The results revealed that replacing a non-cysteinyl ligand with a cysteine in NfnSL altered the enzyme’s ability to maintain coordinated electron transfer. Dye-based kinetics showed a decrease in the efficiency of electron bifurcation in the modified enzyme. Substrate-binding measurements indicated that the change affected the enzyme’s interaction with ferredoxin. Biochemical activity assays confirmed a reduction in the fidelity of the bifurcation process. Electron distribution assessments showed a shift in the proportion of electrons allocated to each pathway. These findings suggest that site-differentiated ligands are important for the proper functioning of the enzyme. The observed changes were not due to global structural alterations but rather localized effects on electron transfer. These results highlight the role of ligand specificity in modulating redox reactions.

Conclusions:

The study demonstrated that site-differentiated iron-sulfur cluster ligands in NfnSL are important for maintaining the fidelity of electron bifurcation. The replacement of a non-cysteinyl ligand with a cysteine reduced the enzyme’s ability to coordinate electron transfer pathways. These findings suggest that ligand differentiation is a key factor in the regulation of redox reactions in bifurcating enzymes. The observed effects were specific to the modified ligand and did not reflect broader structural changes. The results support the idea that cofactor ligands play a functional role in electron bifurcation. The study also showed that changes in ligand composition can influence substrate interactions and electron distribution. These conclusions are based on the direct comparison of wild-type and modified enzymes. The findings may inform future investigations into the role of cofactor ligands in other redox enzymes.

The study found that these ligands help maintain the fidelity of electron bifurcation by coordinating the two electron transfer pathways.

The researchers replaced a non-cysteinyl ligand with a cysteine and compared enzyme activity using kinetic and biochemical assays.

Fidelity ensures that electrons are distributed correctly between NAD+ and ferredoxin, minimizing energy loss from non-productive reactions.

Dye-based steady-state kinetics, substrate-binding measurements, and electron distribution assessments were used.

The modified enzyme showed a shift in electron allocation between the two pathways, indicating reduced coordination.

The results suggest that site-differentiated ligands may be important in modulating redox reactions in other enzymes for metabolic engineering.