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Related Concept Videos

Force and Potential Energy in One Dimension01:13

Force and Potential Energy in One Dimension

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Force can be calculated from the expression for potential energy, which is a function of position. The component of a conservative force, in a particular direction, equals the negative of the derivative of the corresponding potential energy with respect to the displacement in that direction. For regions where potential energy changes rapidly with displacement, the work done and force is maximum. Also, when force is applied along the positive coordinate axis, the potential energy decreases with...
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Force and Potential Energy in Three Dimensions01:04

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Consider a particle moving under the action of a conservative force that has components along each coordinate axis. Each component of force is a function of the coordinates. The potential energy function U is also a function of all three spatial coordinates. Force in one dimension can be written as the negative ratio of potential energy change to the displacement along that coordinate. For minimal displacement, the ratios become derivatives. If a function has many variables, the derivative only...
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Energy Diagrams - I01:14

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The dynamics of a mechanical system can be easily understood by interpreting a potential energy diagram. Since energy is a scalar quantity, the interpretation of the dynamics of the system becomes even simpler.
Take the example of a skater on a parabolic ramp. The potential energy at different points along the ramp will be proportional to the height of the ramp, which varies quadratically with the horizontal position on the ramp. As the skater moves down the ramp from the highest position,...
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Work and Energy for Variable Forces01:10

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When an object is acted upon by a variable force, the amount of work done and the change in energy of the object can be more complex to calculate compared to when a constant force is applied. Work is the product of force and displacement, while energy is the capacity of a system to do work. When a constant force is applied to an object, the work done can be calculated as the product of the force and the distance moved in the direction of the force. However, when a variable force is applied, the...
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Energy Associated With a Charge Distribution01:21

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The work done to bring a charge through a distance r is given by the potential difference between the initial and the final position. To assemble a collection of point charges, the total work done can be expressed in terms of the product of each pair of charges divided by their separation distance, defined with respect to a suitable origin. Solving this expression gives the energy stored in a point charge distribution.
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Energy Diagrams - II01:10

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Energy diagrams are important to understand the dynamics of a system. The topology of an energy diagram helps illustrate the equilibrium points of the system.
The point in the energy diagram at which the system’s potential energy is the lowest is known as the local minima. The system tends to stay in this position indefinitely unless acted upon by a net force. The slope of the potential energy diagram at the local minima is zero, indicating that zero net force is acting on the system. The...
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A physics-based energy function allows the computational redesign of a PDZ domain.

Vaitea Opuu1, Young Joo Sun2, Titus Hou2

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Summary

Computational protein design successfully redesigned a PDZ domain using physics-based and knowledge-based energy functions. This approach demonstrates that physical principles can guide whole-protein redesign for novel protein structures.

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Area of Science:

  • Biochemistry
  • Structural Biology
  • Computational Biology

Background:

  • Computational protein design (CPD) aims to solve the inverse folding problem by predicting sequences that fold into desired structures.
  • Previous CPD efforts utilized knowledge-based energy functions for both folded and unfolded protein states.
  • The PDZ domain is a common structural motif in signaling proteins.

Purpose of the Study:

  • To investigate the feasibility of entirely redesigning a PDZ domain using a hybrid energy function.
  • To evaluate the efficacy of combining physics-based and knowledge-based energy terms in CPD.
  • To experimentally validate computationally designed protein sequences.

Main Methods:

  • Employed a hybrid energy function: physics-based for the folded state and knowledge-based for the unfolded state.
  • Generated thousands of candidate sequences using Monte Carlo simulations.
  • Selected three top-scoring sequences for experimental characterization based on energy and empirical criteria.

Main Results:

  • All three redesigned sequences were successfully overexpressed in the laboratory.
  • Circular dichroism and 1D-NMR spectra indicated native-like folding for all tested constructs.
  • Two constructs exhibited ligand-induced shifts in thermal denaturation, confirming correct folding and function.

Conclusions:

  • Successful whole-protein redesign of a PDZ domain is achievable using a physics-based energy function for the folded state and a knowledge-based function for the unfolded state.
  • The combination of physical principles and empirical filtering is a viable strategy for de novo protein design.
  • This study validates the power of computational approaches in creating functional protein structures.