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WATER Plants' most important chemical most often limits productivity
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WATER Plants' most important chemical most often limits productivity.

Dec 13, 2015

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Shavonne Hart
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Page 1: WATER Plants' most important chemical most often limits productivity.

WATER• Plants' most important chemical• most often limits productivity

Page 2: WATER Plants' most important chemical most often limits productivity.

WATER• Plants' most important chemical• most often limits productivity

• Often >90%% of a plant cell’s weight

Page 3: WATER Plants' most important chemical most often limits productivity.

WATER• Plants' most important chemical• most often limits productivity

• Often >90%% of a plant cell’s weight• Gives cells shape

Page 4: WATER Plants' most important chemical most often limits productivity.

WATER• Plants' most important chemical• most often limits productivity

• Often >90%% of a plant cell’s weight• Gives cells shape• Dissolves many chem

Page 5: WATER Plants' most important chemical most often limits productivity.

WATER• Dissolves many chem• most biochem occurs in water• Source of e- for PS

Page 6: WATER Plants' most important chemical most often limits productivity.

WATER• most biochem occurs in water• Source of e- for PS• Constantly lose water due to PS (1000 H2O/CO2)

Page 7: WATER Plants' most important chemical most often limits productivity.

WATER• most biochem occurs in water• Source of e- for PS• Constantly lose water due to PS• Water transport is crucial!

Page 8: WATER Plants' most important chemical most often limits productivity.

WATER• Water transport is crucial!• SPAC= Soil Plant Air Continuum• moves from soil->plant->air

Page 9: WATER Plants' most important chemical most often limits productivity.

WATER Formula = H2O Formula weight = 18 daltons Structure = tetrahedron, bond angle 104.5˚

Page 10: WATER Plants' most important chemical most often limits productivity.

WATER Structure = tetrahedron, bond angle 104.5˚ polar :O is more attractive to electrons than H

+ on H- on O

Page 11: WATER Plants' most important chemical most often limits productivity.

WaterPolarity is reason for water’s properties water forms H-bonds with polar molecules

Page 12: WATER Plants' most important chemical most often limits productivity.

WaterPolarity is reason for water’s properties water forms H-bonds with polar molecules

Hydrophilic = polar moleculesHydrophobic = non-polar molecules

Page 13: WATER Plants' most important chemical most often limits productivity.

Properties of water1) Cohesion = water H-bonded to water

-> reason for surface tension

Page 14: WATER Plants' most important chemical most often limits productivity.

Properties of water1) Cohesion = water H-bonded to water

-> reason for surface tension-> why water can be drawn from roots to leaves

Page 15: WATER Plants' most important chemical most often limits productivity.

Properties of water1) Cohesion = water H-bonded to water2) Adhesion = water H-bonded to something else

Page 16: WATER Plants' most important chemical most often limits productivity.

Properties of water1) Cohesion = water H-bonded to water2) Adhesion = water H-bonded to something else• Cohesion and adhesion are crucial for water movement in plants!

Page 17: WATER Plants' most important chemical most often limits productivity.

Properties of water1) Cohesion = water H-bonded to water2) Adhesion = water H-bonded to something else• Cohesion and adhesion are crucial for water movement in plants!• Surface tension & adhesion in mesophyll creates force that draws water through the plant!

Page 18: WATER Plants' most important chemical most often limits productivity.

Properties of water1) Cohesion = water H-bonded to water2) Adhesion = water H-bonded to something else3) high specific heat• absorb heat when break H-bonds: cools leaves

Page 19: WATER Plants' most important chemical most often limits productivity.

Properties of water1) Cohesion = water H-bonded to water2) Adhesion = water H-bonded to something else3) high specific heat• absorb heat when break H-bonds• Release heat when form H-bonds

Page 20: WATER Plants' most important chemical most often limits productivity.

Properties of water1) Cohesion = water H-bonded to water2) Adhesion = water H-bonded to something else3) high specific heat4) Ice floats

Page 21: WATER Plants' most important chemical most often limits productivity.

Properties of water1) Cohesion = water H-bonded to water2) Adhesion = water H-bonded to something else3) high specific heat4) Ice floats5) Universal solvent

Page 22: WATER Plants' most important chemical most often limits productivity.

Properties of water1) Cohesion = water H-bonded to water2) Adhesion = water H-bonded to something else3) high specific heat4) Ice floats5) Universal solvent•Take up & transport nutrients dissolved in water

Page 23: WATER Plants' most important chemical most often limits productivity.

Properties of water5) “Universal” solvent•Take up & transport nutrients dissolved in water•Transport organics dissolved in water

Page 24: WATER Plants' most important chemical most often limits productivity.

Properties of water1) Cohesion = water H-bonded to water2) Adhesion = water H-bonded to something else3) high specific heat4) Ice floats5) Universal solvent6) Hydrophobic bonds

Page 25: WATER Plants' most important chemical most often limits productivity.

Properties of water1) Cohesion = water H-bonded to water2) Adhesion = water H-bonded to something else3) high specific heat4) Ice floats5) Universal solvent6) Hydrophobic bonds7) Water ionizes

Page 26: WATER Plants' most important chemical most often limits productivity.

pH[H+] = acidity of a solutionpH = convenient way to measure aciditypH = - log10 [H+]pH 7 is neutral: [H+] = [OH-]

-> at pH 7 [H+] = 10-7 moles/l

Page 27: WATER Plants' most important chemical most often limits productivity.

pHPlants vary pH to control many processes!

Page 28: WATER Plants' most important chemical most often limits productivity.

Water movementDiffusion: movement of single molecules down ∆[ ] due to random motion until [ ] is even•Driving force?

Page 29: WATER Plants' most important chemical most often limits productivity.

Water movementDiffusion: movement of single molecules down ∆[ ] due to random motion until [ ] is even • Driving force: lowers free energy•∆G = ∆H- T∆S

Page 30: WATER Plants' most important chemical most often limits productivity.

Water movementDiffusion: movement of single molecules down ∆[ ] due to random motion until [ ] is even Bulk Flow: movement of groups ofmolecules down a pressure gradient

Page 31: WATER Plants' most important chemical most often limits productivity.

Water movementDiffusion: movement of single molecules down ∆[ ] due to random motion until [ ] is even Bulk Flow: movement of groups ofmolecules down a pressure gradient• Independent of ∆ [ ] !

Page 32: WATER Plants' most important chemical most often limits productivity.

Water movementDiffusion: movement of single molecules down ∆[] due to random motion until [ ] is even Bulk Flow: movement of groups of molecules down a pressure gradient•Independent of ∆[ ] !•How water moves through xylem

Page 33: WATER Plants' most important chemical most often limits productivity.

Water movementDiffusion: movement of single molecules down [] due to random motion until [ ] is even Bulk Flow: movement of groups of molecules down a pressure gradient•Independent of ∆ [ ] !•How water moves through xylem•How water moves through soil and apoplast

Page 34: WATER Plants' most important chemical most often limits productivity.

Water movementBulk Flow: movement of groups of molecules down a pressure gradient•Independent of ∆ [ ] !•How water moves through xylem•Main way water moves through soil and apoplast•Very sensitive to radius of vessel: increases as r4

Page 35: WATER Plants' most important chemical most often limits productivity.

Water movementDiffusion: movement of single molecules down ∆[] due to random motion until [ ] is even Bulk Flow: movement of groups of molecules down a pressure gradient•Independent of ∆[ ] !•How water moves through xylem•Main way water moves through soil and apoplast•Very sensitive to radius of vessel: increases as r4

Osmosis: depends on bulk flow and diffusion!

Page 36: WATER Plants' most important chemical most often limits productivity.

Water movementOsmosis: depends on bulk flow and diffusion!water crosses membranes but other solutes do notwater tries to even its [ ] on each side

Page 37: WATER Plants' most important chemical most often limits productivity.

Water movementOsmosis: depends on bulk flow and diffusion!water crosses membranes but other solutes do notwater tries to even its [ ] on each sideother solutes can’t: result is net influx of water

Page 38: WATER Plants' most important chemical most often limits productivity.

Water movementOsmosis: depends on bulk flow and diffusion!•Moves through aquaporins, so rate depends on pressure and [ ] gradients!

Page 39: WATER Plants' most important chemical most often limits productivity.

Water movementOsmosis: depends on bulk flow and diffusion!•Moves through aquaporins, so rate depends on pressure and [ ] gradients!• Driving force = water's free energy (J/m3 = MPa)

Page 40: WATER Plants' most important chemical most often limits productivity.

Water potentialDriving force = water's free energy = water potential w

• Important for many aspects of plant physiology

Page 41: WATER Plants' most important chemical most often limits productivity.

Water potentialDriving force = water's free energy = water potential w

Water moves to lower its potential

Page 42: WATER Plants' most important chemical most often limits productivity.

Water potentialDriving force = water's free energy = water potential w

Water moves to lower its potential

Page 43: WATER Plants' most important chemical most often limits productivity.

Water potentialDriving force = water's free energy = water potential w

Water moves to lower its potentialDepends on:

1. [H2O]: s (osmotic potential)

Page 44: WATER Plants' most important chemical most often limits productivity.

Water potentialWater moves to lower its potentialDepends on:

1. [H2O]: s (osmotic potential)

2. Pressure : p

• Turgor pressure inside cells

Page 45: WATER Plants' most important chemical most often limits productivity.

Water potentialWater moves to lower its potentialDepends on:

1. [H2O]: s (osmotic potential)

2. Pressure : p

• Turgor pressure inside cells• Negative pressure in xylem!

Page 46: WATER Plants' most important chemical most often limits productivity.

Water potentialWater moves to lower its potentialDepends on:• [H2O]: s (osmotic potential)

• Pressure p

• Gravity g

w = s +p + g

Page 47: WATER Plants' most important chemical most often limits productivity.

Water potentialWater moves to lower its potentialDepends on:• [H2O]: s (osmotic potential)

• Pressure p

• Gravity g

w = s +p + g

w of pure water at sea level

& 1 atm = 0 MPA

Page 48: WATER Plants' most important chemical most often limits productivity.

Water potentialw = s +p + g

w of pure water at sea level & 1 atm = 0 MPA

s (osmotic potential) is always negative

Page 49: WATER Plants' most important chemical most often limits productivity.

Water potentialw = s +p + g

w of pure water at sea level & 1 atm = 0 MPA

s (osmotic potential) is always negative• If increase [solutes] water will move in

Page 50: WATER Plants' most important chemical most often limits productivity.

Water potentialw = s +p + g

w of pure water at sea level & 1 atm = 0 MPA

s (osmotic potential) is always negative• If increase [solutes] water will move in

p (pressure potential) can be positive or negative

Page 51: WATER Plants' most important chemical most often limits productivity.

Water potentialw = s +p + g

w of pure water at sea level & 1 atm = 0 MPA

s (osmotic potential) is always negative• If increase [solutes] water will move in

p (pressure potential) can be positive or negative

• Usually positive in cells to counteract s

Page 52: WATER Plants' most important chemical most often limits productivity.

Water potentialp (pressure potential) can be positive or negative

• Usually positive in cells to counteract s

• Helps plants stay same size despite daily fluctuations in w

Page 53: WATER Plants' most important chemical most often limits productivity.

Water potentialw = s +p + g

p (pressure potential) can be positive or negative

• Usually positive in cells to counteract s

• Helps plants stay same size despite daily fluctuations in w

• p in xylem is negative, draws water upwards

Page 54: WATER Plants' most important chemical most often limits productivity.

Water potentialw = s +p + g

p (pressure potential) can be positive or negative

• Usually positive in cells to counteract s

• Helps plants stay same size despite daily fluctuations in w

• p in xylem is negative, draws water upwardsg can usually be ignored, but important for tall trees

Page 55: WATER Plants' most important chemical most often limits productivity.

Water potentialMeasuring water potential

Page 56: WATER Plants' most important chemical most often limits productivity.

Water potentialMeasuring water potentials (osmotic potential) is “easy”• Measure concentration of solution in equilibrium with

cells

Page 57: WATER Plants' most important chemical most often limits productivity.

Water potentialMeasuring water potentials (osmotic potential) is “easy”• Measure concentration of solution in equilibrium with

cells g (gravity potential) is easy: height above ground• -0.01 Mpa/m

Page 58: WATER Plants' most important chemical most often limits productivity.

Water potentialMeasuring water potentials (osmotic potential) is “easy”• Measure concentration of solution in equilibrium with

cells g (gravity potential) is easy: height above ground

P (pressure potential) is hard!• Pressure bomb = most common technique

Page 59: WATER Plants' most important chemical most often limits productivity.

Water potentialMeasuring water potentials (osmotic potential) is “easy”• Measure concentration of solution in equilibrium with

cells g (gravity potential) is easy: height above ground

P (pressure potential) is hard!• Pressure bomb = most common techniqueOthers include pressure transducers, xylem probes

Page 60: WATER Plants' most important chemical most often limits productivity.

Measuring water potentialP (pressure potential) is hard!• Pressure bomb = most common techniqueOthers include pressure transducers, xylem probesTherefore disagree about H2Otransport in xylem