ISCID Forums


Post New Topic  Post A Reply
my profile | search | faq | forum home
  next oldest topic   next newest topic
» ISCID Forums   » General   » News & Features   » (Abstract) Putting Intentions into Cell Biochemistry: An Artificial Intelligence ...

   
Author Topic: (Abstract) Putting Intentions into Cell Biochemistry: An Artificial Intelligence ...
Moderator
Administrator
Member # 1

Icon 1 posted 25. January 2002 09:53      Profile for Moderator   Email Moderator   Send New Private Message       Edit/Delete Post 
Journal of Theoretical Biology, 214 : 105-134

Putting Intentions into Cell Biochemistry: An Artificial Intelligence Perspective

Jonker C., Snoep J., Treur J., Westerhoff H., Wijngaards W. (2002)

Abstract: The living cell exists by virtue of thousands of nonlinearly interacting processes. This complexity greatly impedes its understanding. The standard approach to the calculation of the behaviour of the living cell, or part thereof, integrates all the rate equations of the individual processes. If successful extremely intensive calculations often lead the calculation of coherent, apparently simple, cellular "decisions" taken in response to a signal: the complexity of the behavior of the cell is often smaller than it might have been. The "decisions" correspond to the activation of entire functional units of molecular processes, rather than individual ones. The limited complexity of signal and response suggests that there might be a simpler way to model at least some important aspects of cell function. In the field of Artificial Intelligence, such simpler modelling methods for complex systems have been developed. In this paper, it is shown how the Artificial Intelligence description method for deliberative agents functioning on the basis of beliefs, desires and intentions as known in Artificial Intelligence, can be used successfully to describe essential aspects of cellular regulation. This is demonstrated for catabolite repression and substrate induction phenomena in the bacterium Escherichia coli. The method becomes highly efficient when the computation is automated in a Prolog implementation. By defining in a qualitative way the food supply of the bacterium, the make-up of its catabolic pathways is readily calculated for cases that are sufficiently complex to make the traditional human reasoning tedious and error prone.

[ 08 February 2002: Message edited by: Moderator ]


IP: Logged


All times are East Coast  
Post New Topic  Post A Reply Close Topic    Move Topic    Delete Topic    Top Topic next oldest topic   next newest topic
 - Printer-friendly view of this topic
Hop To:

Contact Us | ISCID

All content © ISCID and content contributor 2001-2003

The ISCID Forums are aimed at generating insight into the nature of complex systems (e.g. biological complexity, organizational complexity, etc.) and the ontological status of purpose, especially from the vantage point of various information- and design-theoretic models.

Indexed by UBB Spider Hack  |  Powered by Infopop Corporation UBB.classicTM 6.3.1.1

PCID | Encyclopedia | Brainstorms | The Archive | News | Essay Contests | Chat Events | Membership