Title: Lecture 10: Bacterial Adaptation
1Lecture 10 Bacterial Adaptation
Reading assignments in Text Lengeler et al.
1999 Text pages 469-483 Rapid Enzyme
control pages 123-126 ATP / NAD(P)H
regulation Lecture 9 Text pages 674-676
Bacterial diversity pages 700-704 Phylogenetic
trees pages 704-716 Early life/ evolution pages
723-728 Food in the real world pages 746-750
Biofilms pages 754-761 Cooperation and
methanogens pages 763-774 Bugs in water pages
775-778 Bugs in sediments pages 779-784 Bugs in
soil pages 784-792 Bugs in extreme
environments pages 879-882 Bugs in food
products pages 907-908 Bio-treatment
2Lecture Overview
Bacterial populations (lab conditions)
Bacteria as single cells (cell cycles)
Differentiation
Symbiosis
Sporulation
Bacterial Diversity
Adaptation Mechanisms
Rapid
Change enzyme activities
Slower
Make new enzymes
3Rapid adaptation responses/ Demand feeding
Cell growth
Cell proteins
M9
14-C glycerol
E. coli
14-C 20 amino acids
Cold Histidine
Cold Histidine
Biosyn.
Allows demand feeding of Biosynthesis
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5Feedback systems
Trp
Rapid growth
Slow, stop growth ?
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7Global ATP and NADPH allosteric controls
Stops growth, ATP stays high
E. coli O2, rapid growth, ATP high
ATP (1/2)ADP
ATP (P) Energy Charge EC
Theoretical EC 0-1.0
Physiological EC 0.87-0.95, lt0.5
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9Rapid and massive use of ATP
10 msec
LB
M9
Growing 1.0 gram of E. coli
10Allosteric maintainance of reduction power
NADH
Low 0.03 - 0.07
Catabolic Reduction Charge, CRC
NADH NAD
NADPH
High 0.3 - 0.7
Anabolic Reduction Charge, ARC
NADPH NADP
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12Covalent modifications of bacterial proteins
AT Adenyl Trans
GS Glutamine Synthase
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14Glutamine Synthase (GS) protein
High Enzyme activity
Low Enzyme activity
15Adaptation to high and low ammonium
Low use
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17Sensing N and switching GS
The players
GS
AT
UT
Uridyl Transferase
P
Kinase HisP
NRII
NRI
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19Sensing N and switching GS
Low NH3
Sensor ?
UT
Gln / aKeto
High activity No FB inhibition
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