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

Non-equilibrium in the Cell01:16

Non-equilibrium in the Cell

4.2K
An important concept in studying metabolism and energy is that of chemical equilibrium. Most chemical reactions are reversible. They can proceed in both directions, releasing energy into their environment in one direction, and absorbing it from the environment in the other direction. The same is true for the chemical reactions involved in cell metabolism, such as the breaking down and building up of proteins into and from individual amino acids, respectively. Reactants within a closed system...
4.2K
Introduction to Chemical Reactions01:23

Introduction to Chemical Reactions

8.3K
All chemical reactions begin with a reactant, the general term for one or more substances entering the reaction. Sodium and chloride ions, for example, are the reactants in the production of table salt. One or more substances produced by a chemical reaction are called the product. Chemical reactions follow the law of conservation of mass, which means that matter cannot be created nor destroyed in a chemical reaction. The components of the reactants—the number of atoms and the...
8.3K
Entropy within the Cell01:22

Entropy within the Cell

10.4K
A living cell's primary tasks of obtaining, transforming, and using energy to do work may seem simple. However, the second law of thermodynamics explains why these tasks are harder than they appear. None of the energy transfers in the universe are completely efficient. In every energy transfer, some amount of energy is lost in a form that is unusable. In most cases, this form is heat energy. Thermodynamically, heat energy is defined as the energy transferred from one system to another that...
10.4K
Characteristics of Life01:23

Characteristics of Life

222.2K
Biology is a natural science that studies life and living organisms, including their structure, function, development, interactions, evolution, distribution, and taxonomy. The field's scope is extensive and divided into several specialized disciplines, such as anatomy, physiology, ethology, genetics, and many more. All living things share a few key traits, including cellular organization, heritable genetic material and the ability to adapt/evolve, metabolism to regulate energy needs, the...
222.2K
Types of Chemical Reactions: Anabolic and Catabolic01:19

Types of Chemical Reactions: Anabolic and Catabolic

15.8K
The first law of thermodynamics holds that energy can neither be created nor destroyed—it can only change form. An organism's essential function is to consume (ingest) energy and molecules in the foods we eat, convert some of it into fuel for movement, sustain our body functions, and build and maintain our body structures. There are two types of reactions that accomplish this: anabolism and catabolism.
Anabolism is the process of combining smaller, simpler molecules into larger, more...
15.8K
Chemistry of the Cell02:58

Chemistry of the Cell

41.6K
The cell is chemically composed of water, organic molecules and inorganic ions.
Water
The polarity of the water molecule and its resulting hydrogen bonding makes water a unique substance with special properties that are intimately tied to the processes of life. Life originally evolved in an aqueous environment, and most of an organism’s cellular chemistry and metabolism occur inside the aqueous contents of the cell’s cytoplasm. Special properties of water are its high heat capacity...
41.6K

You might also read

Related Articles

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

Sort by
Same author

Supramolecular polymerization couples constitutional adaptability and fluorescence response in a dynamic covalent library.

Chemical communications (Cambridge, England)·2026
Same author

Catalyst-Free Dynamic Covalent Knoevenagel/Hydrazide Condensation for Polyacylhydrazones and Covalent Adaptable Networks.

Angewandte Chemie (International ed. in English)·2025
Same author

Catalyst-Free Dynamic Covalent C=C/C=N Metathesis Reaction for Associative Covalent Adaptable Networks.

Angewandte Chemie (International ed. in English)·2024
Same author

Mechanically interlocked [c2]daisy chain backbone enabling advanced shape-memory polymeric materials.

Nature communications·2024
Same author

Amphiphilic Cyclodextrin Nanoparticles as Delivery System for Idebenone: A Preformulation Study.

Molecules (Basel, Switzerland)·2023
Same author

Constitutional Dynamic Selection at Low Reynolds Number in a Triple Dynamic System: Covalent Dynamic Adaptation Driven by Double Supramolecular Self-Assembly.

Journal of the American Chemical Society·2021

Related Experiment Video

Updated: Jun 8, 2025

Generating Controlled, Dynamic Chemical Landscapes to Study Microbial Behavior
10:07

Generating Controlled, Dynamic Chemical Landscapes to Study Microbial Behavior

Published on: January 31, 2020

6.1K

Approaching Dynamic Behaviors of Life through Systems Chemistry.

Ruirui Gu1, Kim Lambertsen Larsen2, Ali Wang3

  • 1Key Laboratory for Advanced Materials, Joint International Research Laboratory of Precision Chemistry and Molecular Engineering, Feringa Nobel Prize Scientist Joint Research Center, Frontiers Science Center for Materiobiology and Dynamic Chemistry, School of Chemistry and Molecular Engineering, Institute of Fine Chemicals, East China University of Science and Technology, 130 Meilong Road, Shanghai, China.

Chemistry (Weinheim an Der Bergstrasse, Germany)
|November 1, 2024
PubMed
Summary

Systems chemistry aims to replicate life's dynamic behaviors using molecular networks. This review explores advancements, paving the way for creating synthetic life from scratch.

Keywords:
Chemically fueled assembliesDynamic Combinatorial ChemistrySelf-replicationSynthetic lifeSystems chemistry

More Related Videos

The Use of Chemostats in Microbial Systems Biology
13:19

The Use of Chemostats in Microbial Systems Biology

Published on: October 14, 2013

30.8K
Chemical Gardens as Flow-through Reactors Simulating Natural Hydrothermal Systems
12:55

Chemical Gardens as Flow-through Reactors Simulating Natural Hydrothermal Systems

Published on: November 18, 2015

14.5K

Related Experiment Videos

Last Updated: Jun 8, 2025

Generating Controlled, Dynamic Chemical Landscapes to Study Microbial Behavior
10:07

Generating Controlled, Dynamic Chemical Landscapes to Study Microbial Behavior

Published on: January 31, 2020

6.1K
The Use of Chemostats in Microbial Systems Biology
13:19

The Use of Chemostats in Microbial Systems Biology

Published on: October 14, 2013

30.8K
Chemical Gardens as Flow-through Reactors Simulating Natural Hydrothermal Systems
12:55

Chemical Gardens as Flow-through Reactors Simulating Natural Hydrothermal Systems

Published on: November 18, 2015

14.5K

Area of Science:

  • Systems chemistry
  • Origin of life research
  • Biochemistry

Background:

  • Living systems exhibit complex metabolic reactions and molecular assembly, leading to dynamic behaviors.
  • Recent decades have seen increased focus on replicating life's properties, fueling systems chemistry growth.
  • Systems chemistry investigates molecular networks and emergent properties to understand life's complexity.

Purpose of the Study:

  • To review seminal research and recent advancements in recreating life's dynamic behaviors using systems chemistry.
  • To highlight the potential of systems chemistry in understanding and synthesizing life.

Main Methods:

  • Literature review of key studies in systems chemistry.
  • Analysis of research focused on replicating dynamic biological behaviors.
  • Exploration of emergent properties in molecular networks.

Main Results:

  • Systems chemistry provides novel concepts and tools for studying life's complexity.
  • Significant progress has been made in recreating dynamic behaviors observed in living systems.
  • Seminal works and recent advancements demonstrate the feasibility of this approach.

Conclusions:

  • Recreating life's dynamic behaviors via systems chemistry is a crucial step towards de novo synthetic life.
  • This field offers a powerful framework for understanding fundamental principles of life.
  • Continued research in systems chemistry holds promise for future breakthroughs in synthetic biology.