subject guide notes

C3.1.17—Observations of tropic responses in seedlings

tropic movements are directional movements of plant in response to stimuli

  • plants alter their growth so they can reach optimal conditions

tropic movements can be:

  • positive (towards stimuli)

  • negative (away from stimuli)


C3.1.18—Positive phototropism as a directional growth response to lateral light in plant shoots

phototropism is one type of tropic movements in plants

  • is called positive phototropism, cuz stem is growing towards light


but roots exhibit negative phototropism cuz they grow away from the light


plants also exhibit geotropic movements

  • roots typically display positive geotropism - grow downwards

  • stems display negative geotropism - grow upwards


C3.1.19—Phytohormones as signalling chemicals controlling growth, development and response to stimuli in plants

phytohormones act as chemical messengers

  • are plant hormones that regulate multiple physiological processes


there are 5 major types of phytohormones: auxins, cytokinins, gibberellins, abscisic acid & ethylene


C3.1.20—Auxin efflux carriers as an example of maintaining concentration gradients of phytohormones

auxin causes cell elongation

it is synthesized by the apical meristems (shoot tips) & are produced in coleoptile

tropic movements are caused by uneven distribution of auxin


when light is overhead, auxin produced at tip of shoot, diffuses evenly down the stem

  • auxin is distributed evenly = cells grow at same rate = shoot grows vertically upwards


if photoreceptors in coleoptile detect light source from one direction, auxin molecules move towards shaded site of shoot

  • increased concentration of auxin at shaded side = rapid cell elongation & growth on that side

  • the uneven growth causes stem to bend towards light source


active directional cell-to-cell movement of auxin is a major transport of auxin & involves

  • entry of auxin into cell passively or via membrane proteins called auxin influx carriers

  • exit of auxin out of cell via membrane proteins called auxin efflux pumps


auxin efflux carriers create high concentration of auxin in intercellular space & low concentration in adjacent cell

  • causes auxin to flow down its concentration gradient


C3.1.21—Promotion of cell growth by auxin

*can check kognity for this & slideshow

in order for plant cells to elongate, the cross-links between the cellulose molecules of cell wall hv to broken


C3.1.22—Interactions between auxin and cytokinin as a means of regulating root and shoot growth

combined actions of auxins & cytokinins regulate growth of roots & stems


meristems consist of undifferentiated cells

shoot meristems give rise to parts of plant that’re typically seen above ground

root meristems give rise to parts of plant below ground


auxins - synthesized by stem meristem while cytokinins synthesized by root meristems

  • auxin then moves downwards towards root, resulting in geotropism

  • cytokinin moves upwards towards the shoot


some studies show that high auxin to cytokinin ratio favours development of roots while a high cytokinin to auxin ration favours shoot & bud development


ratio also determines apical dominance

  • as auxin transported down apical meristem, lateral bud formation is inhibited

  • upward movement of cytokinins from root stimulates lateral bud formation


auxins lead to meristematic cell division while cytokinins lead to differentiation of cells

*check table for more comparisons


C3.1.23—Positive feedback in fruit ripening and ethylene production

ethylene (IUPAC name, ethene) is important in ripening fruit

  • it causes all the changes the signal fruit is ripe

    • such as breaking down cell walls to soften fruit, causes green fruit to change color, breaks down starch into sugars


works on positive feedback mechanism

  • its presence leads to synthesis of more ethylene

  • as fruit ripens, larger amounts of ethylene are produced, speeding up the ripening process & ensuring ripening process is synchronised

production of ethylene depends on type of fruit