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Plants, Isomolar Point, and Water Potential Chapters: 36.

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Presentation on theme: "Plants, Isomolar Point, and Water Potential Chapters: 36."— Presentation transcript:

1 Plants, Isomolar Point, and Water Potential Chapters: 36

2 What you need to know! The role of diffusion (osmosis), active transport, and bulk flow in the movement of water and nutrients in plants. How water potential explains transpiration.

3 Plant cells have three stages (conditions) 1.Turgid: vacuole filled to max, cell is very firm, high pressure, plant appears upright 2.Flaccid: vacuole is not filled to max, cell gets dehydrated, plant starts wilting 3.Plasmolysis: extreme loss of water, vacuole is very small, plasma membrane detaches from cell wall, plant is wilted, dries up Turgor Pressure: Water pressure in plant cells, regulated through opening/closing of stomata

4 Finding the Isomolar Point of Tissues Incubate tissues in liquids with increasing molarity (salts, sugars, etc.) Mass before and after

5 Finding the Isomolar Point of Tissues If tissue gains mass: outside was hypotonic, inside was hypertonic so water flowed into tissue If tissue mass stayed the same: outside and inside are isotonic; the molarity of the solution = the molarity of tissue (Isomolar Point) If tissue lost mass: outside was hypertonic, inside was hypotonic so water flowed out of the tissue

6 Finding the Isomolar Point of Tissues Important: Isomolar point has to be identified using a graph. Use the point where your line intersects with the zero change mass line. Example on board…

7 Water Potential Ψ Water concentration; direction of water flow Problem: a 0.5 M sucrose solution at 20°C under normal pressure (open system).

8 Water Potential Ψ Ψ = Ψ pressure + Ψ solute Ψ solute = -i x C x R x T i = ionization constant (sucrose = 1) C = molar concentration of solute (.5) R = Pressure constant (0.0831) T = temperature in Kelvin = 273 + °C Ψ solute (s) = -(1)(.5)(.0831)(273+20) Ψ s = -12.17 bars

9 Water Potential Ψ Open system = no outside pressure or vacuum applied  Ψ pressure (p) = 0 Ψ = -12.17 bars + 0 = -12.17 bars Water potential = -12 bars

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