TY - JOUR
T1 - Sepsis
T2 - From pattern to mechanism and back
AU - Vodovotz, Yoram
AU - An, Gary
AU - Namas, Rami A.
PY - 2012
Y1 - 2012
N2 - Sepsis is a clinical entity in which complex inflammatory and physiological processes are mobilized, not only across a range of cellular and molecular interactions, but also in clinically relevant physiological signals accessible at the bedside. There is a need for a mechanistic understanding that links the clinical phenomenon of physiologic variability with the underlying patterns of the biology of inflammation, and we assert that this can be facilitated through the use of dynamic mathematical and computational modeling. An iterative approach of laboratory experimentation and mathematical/computational modeling has the potential to integrate cellular biology, physiology, control theory, and systems engineering across biological scales, yielding insights into the control structures that govern mechanisms by which phenomena, detected as biological patterns, are produced. This approach can represent hypotheses in the formal language of mathematics and computation, and link behaviors that cross scales and domains, thereby offering the opportunity to better explain, diagnose, and intervene in the care of the septic patient.
AB - Sepsis is a clinical entity in which complex inflammatory and physiological processes are mobilized, not only across a range of cellular and molecular interactions, but also in clinically relevant physiological signals accessible at the bedside. There is a need for a mechanistic understanding that links the clinical phenomenon of physiologic variability with the underlying patterns of the biology of inflammation, and we assert that this can be facilitated through the use of dynamic mathematical and computational modeling. An iterative approach of laboratory experimentation and mathematical/computational modeling has the potential to integrate cellular biology, physiology, control theory, and systems engineering across biological scales, yielding insights into the control structures that govern mechanisms by which phenomena, detected as biological patterns, are produced. This approach can represent hypotheses in the formal language of mathematics and computation, and link behaviors that cross scales and domains, thereby offering the opportunity to better explain, diagnose, and intervene in the care of the septic patient.
KW - Inflammatory response
KW - Mathematical modeling
KW - SIRS
KW - Sepsis
KW - Septic shock
UR - http://www.scopus.com/inward/record.url?scp=84868321505&partnerID=8YFLogxK
U2 - 10.1615/CritRevBiomedEng.v40.i4.80
DO - 10.1615/CritRevBiomedEng.v40.i4.80
M3 - Article
C2 - 23140124
AN - SCOPUS:84868321505
SN - 0278-940X
VL - 40
SP - 341
EP - 351
JO - Critical Reviews in Biomedical Engineering
JF - Critical Reviews in Biomedical Engineering
IS - 4
ER -