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Biological engineering

Channel | updated April 01, 2013

Advances in basic biology at the molecular and cellular levels during recent decades have dramatically increased the foundational information available on mechanistic underpinnings of biological systems. Indeed, the genomics revolution has accelerated the pace at which reductionist data is being generated. It is widely agreed that a crucial challenge for the coming decades is how to integrate information from the genomic level to higher levels of system organization, for both fundamental scientific understanding and development of innovative biotechnologies. Engineering disciplines are predicated on the complementary principles of analysis and synthesis, combining to elucidate quantitative "design principles" for the dependence of system behavior on component properties. The "measurement, modeling, and manipulation" approach that has characterized engineering disciplines based on the sciences of physics and chemistry is now finding the molecular and cellular life sciences accessible and amenable as well. Thus, a new discipline of biological engineering is emerging, directed toward analysis of biological systems in terms of key component properties and consequently toward synthesis of technologies that can beneficially modify and control such systems for societal benefit across many, diverse application areas including human and environmental health.

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81 - 100 of 105
Endo 1 Tech Paper Presentation 3/4
  • Biological engineering,
  • Feature
Endo 1 Tech Paper Presentation 3/4

Angelini et al., 2009: paper presented by Endometriosis 1 team in 20.380, Spring 2011 (Q&A)

Biofilms 1 Tech Paper Presentation (3/5)
  • Biological engineering,
  • Feature
Biofilms 1 Tech Paper Presentation (3/5)

Herrington et al., 2010: paper presented by Biofilms 1 team in 20.380, Spring 2011 (Q&A)

Endo 2 Tech Paper Presentation 1/5
  • Biological engineering,
  • Feature
Endo 2 Tech Paper Presentation 1/5

Anderson et al., 2006: paper presented by Endometriosis 2 team in 20.380, Spring 2011

Biofilms 1 Tech Paper Presentation 5/5
  • Biological engineering,
  • Feature
Biofilms 1 Tech Paper Presentation 5/5

Herrington et al., 2010: paper presented by Biofilms 1 team in 20.380, Spring 2011 (Q&A)

Biofilms 1 Tech Paper Presentation 4/5
  • Biological engineering,
  • Feature
Biofilms 1 Tech Paper Presentation 4/5

Herrington et al., 2010: paper presented by Biofilms 1 team in 20.380, Spring 2011 (Q&A)

Biofilms 1 Tech Paper Presentation 2/5
  • Biological engineering,
  • Feature
Biofilms 1 Tech Paper Presentation 2/5

Herrington et al., 2010: paper presented by Biofilms 1 team in 20.380, Spring 2011

Endo 2 Tech Paper Presentation 5/5
  • Biological engineering,
  • Feature
Endo 2 Tech Paper Presentation 5/5

Anderson et al., 2006: paper presented by Endometriosis 2 team in 20.380, Spring 2011

Endo 2 Tech Paper Presentation 4/5
  • Biological engineering,
  • Feature
Endo 2 Tech Paper Presentation 4/5

Anderson et al., 2006: paper presented by Endometriosis 2 team in 20.380, Spring 2011 (Q&A)

Endo 2 Tech Paper Presentation 3/5
  • Biological engineering,
  • Feature
Endo 2 Tech Paper Presentation 3/5

Anderson et al., 2006: paper presented by Endometriosis 2 team in 20.380, Spring 2011 (Q&A)

Endo 2 Tech Paper Presentation 2/5
  • Biological engineering,
  • Feature
Endo 2 Tech Paper Presentation 2/5

Anderson et al., 2006: paper presented by Endometriosis 2 team in 20.380, Spring 2011

Biofilms 1 Tech Paper Presentation 1/5
  • Biological engineering,
  • Feature
Biofilms 1 Tech Paper Presentation 1/5

Herrington et al., 2010: paper presented by Biofilms 1 team in 20.380, Spring 2011

Development of microbial fuel cell technologies for ...
  • Biological engineering,
  • Feature
Development of microbial fuel cell technologies for renewable energy ...

IBE 2010: Bruce Logan

Introduction to Grand Challenges in Biological Engineering
  • Biological engineering,
  • Feature
Introduction to Grand Challenges in Biological Engineering

IBE 2010: Mark Riley

Biomass feedstocks: biological recycling of CO2
  • Biological engineering,
  • Feature
Biomass feedstocks: biological recycling of CO2

IBE 2010: Ben Stuart

Geological CO2 sequestration at the gigatonne scale
  • Biological engineering,
  • Feature
Geological CO2 sequestration at the gigatonne scale

IBE 2010: Ruben Juanes

Control of water related diseases of the 21st century
  • Biological engineering,
  • Feature
Control of water related diseases of the 21st century

IBE 2010: Charles Gerba

Desalination: prospects and challenges
  • Biological engineering,
  • Feature
Desalination: prospects and challenges

IBE 2010: Menachem Elimelech

Panel discussion on biological engineering approaches to ...
  • Biological engineering,
  • Feature
Panel discussion on biological engineering approaches to address grand ...

IBE 2010: Panel Discussion

Gut Microbes and Cancer: A Pioneer's Passion - Part 1
  • Biological engineering,
  • Feature
Gut Microbes and Cancer: A Pioneer's Passion - Part 1

A Celebration of the Life and Work of David B. Schauer This symposium celebrates the professional life of Prof. David Schauer, with a focus on the field of microbial pathogenesis. David Schauer's research dealt with the molecular mechanisms evoked by enteric ...

Gut Microbes and Cancer: A Pioneer's Passion - Part 2
  • Biological engineering,
  • Feature
Gut Microbes and Cancer: A Pioneer's Passion - Part 2

A Celebration of the Life and Work of David B. Schauer This symposium celebrates the professional life of Prof. David Schauer, with a focus on the field of microbial pathogenesis. David Schauer's research dealt with the molecular mechanisms evoked by enteric ...

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