Blood Glucose Regulation.ppt
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1、Blood Glucose Regulation,BIOE 4200,Glucose Regulation Revisited,input: desired blood glucose output: actual blood glucose error: desired minus measured blood glucose disturbance: eating, fasting, etc.,controller: a and b cells actuator: glucose storing or releasing tissues plant: glucose metabolism
2、sensor: a and b cells (again),glucose tissues,a & b cells,desired glucose,actual glucose,a & b cells,glucose metabol.,eating, fasting,Insulin/Glucagon Secretion,Complex chemical reaction Not all details have been worked out Need to simplify our analysis Suppose error 0 (actual desired), then insulin
3、 will be secreted,a & b cells,error signal = desired actual (mg/dl),insulin (mg/sec),glucagon (mg/sec),Insulin/Glucagon Secretion,Attempt to model process empirically from experimental data Data shows how hormone secretion rate changes when constant glucose concentration is applied,insulin (mg/sec),
4、100 sec,actual,glucagon (mg/sec),100 sec,error,Insulin/Glucagon Secretion,Rate of insulin secretion decreases with error (increases with actual blood glucose) Rate of insulin secretion decreases as more insulin is released (chemical equilibrium drives reaction back)Rate of glucagon secretion increas
5、es with error (decreases with actual blood glucose) Rate of glucagon secretion decreases as more glucagon is released (chemical equilibrium again),Insulin/Glucagon Secretion,Can now formulate state equations x1 = insulin (mg/sec) x2 = glucagon (mg/sec) u = error (mg/dl) Note dx1/dt and dx2/dt repres
6、ent the change in hormone secretion rate Output equations are written to get states y1 = insulin (mg/sec) y2 = glucagon (mg/sec),Parameters kr and kf have units 1/sec Adjust kr and kf to get hormone secretion rate observed in laboratory,Insulin/Glucagon Diffusion,We have modeled the rate of insulin
7、and glucagon secretion at the pancreas How does this translate to insulin and glucagon concentration at target tissues? First calculate concentration of insulin and glucagon in pancreas given hormone secretion rates Then use diffusion equation to estimate hormone concentration in target tissues,horm
8、one diffusion,insulin (mg/dl),glucagon (mg/dl),insulin (mg/sec),glucagon (mg/sec),Insulin/Glucagon Diffusion,Hormone is added to the bloodstream at a rate of dm/dt (mg/sec) Blood is flowing through the body at a rate of dQ/dt (dl/sec) The concentration of hormone (mg/dl) isThis assumes that the horm
9、ones are uniformly and rapidly mixed within the entire blood supply as it passes through,Insulin/Glucagon Diffusion,This is a simple gain process (no states) Input u1 = insulin secretion rate (mg/sec) Input u2 = glucagon secretion rate (mg/sec) Output y1 = insulin concentration in pancreatic blood (
10、mg/dl) Output y2 = glucagon concentration in pancreatic blood (mg/dl),Parameter kv is inverse of blood flow (sec/dl) Obtain kv from known values Blood flow is 8 10 l/min in normal adults,Insulin/Glucagon Diffusion,Model spread of hormones between pancreas and target tissues with diffusion equationAs
11、sumes diffusion is uniform across entire volume of blood between pancreas and target tissues Assumes all target tissues in same location This models diffusion across static volume and neglects spread due to blood flow The diffusion coefficient can be increased to partially account for effects of blo
12、od flow,Insulin/Glucagon Diffusion,Input u1 = insulin concentration in pancreatic blood (mg/dl) Input u2 = glucagon concentration in pancreatic blood (mg/dl) State x1 and output y1 = insulin concentration in target tissues (mg/dl) State x2 and output y2 = glucagon concentration in target tissues (mg
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