Growth is defined as an irreversible, permanent increase in the size, volume, surface area, or dry biomass of an organ or its parts or an individual cell, accompanied by metabolic processes (both anabolic and catabolic) that consume cellular energy:
- Open / Indeterminate Form of Growth: Unlike animals, which exhibit determinate growth (stopping at adulthood), plants retain the capacity for unlimited growth throughout their lifespan. This is due to the presence of meristems at perpetual growing points.
- Primary vs Secondary Meristems:
- Root Apical Meristem (RAM) and Shoot Apical Meristem (SAM): Responsible for primary growth (elongation of roots and shoots along their longitudinal axes).
- Lateral Meristems (Vascular Cambium and Cork Cambium / Phellogen): Appear later in gymnosperms and dicotyledonous plants, responsible for secondary growth (increase in stem and root girth/thickness).
- Measurable Growth Parameters: At the cellular level, growth is a consequence of increased protoplasm. Because protoplasmic volume is difficult to measure directly, growth is quantified by accessible parameters: increase in fresh weight, dry weight (most reliable), length, surface area, volume, or cell number.
- One maize root apical meristem can generate over 17,500 new cells per hour (increase in cell number).
- A single watermelon cell can expand up to 350,000 times its initial volume (increase in cell size).
Root and shoot apices display three distinct longitudinal zones illustrating the progression of cellular growth:
| Growth Phase | Cytological Characteristics | Cell Wall & Organelle State | Physiological Activity |
|---|---|---|---|
| 1. Meristematic Phase (Cell Division) | Cells are isodiametric, richly packed with dense protoplasm, possessing conspicuous large nuclei. | Primary cell walls are thin, cellulosic, with abundant plasmodesmatal connections; no central vacuole. | Rapid mitotic cell division continuously adding new daughter cells to the plant axis. |
| 2. Elongation Phase (Cell Enlargement) | Located immediately proximal to the meristematic apex. | Extensive vacuolation begins; turgor pressure drives cell enlargement; new cellulosic microfibrils deposited. | Rapid longitudinal expansion of roots and stems, pushing the apex through soil or air. |
| 3. Maturation Phase (Differentiation) | Located more proximal (basal) to the elongation zone. | Cells attain maximal dimensions; secondary wall thickening occurs (lignin, suberin deposition). | Cells undergo functional and structural specialization (e.g., root hairs, tracheary elements). |
The increased growth per unit time is termed the growth rate. It manifests in two distinct patterns:
| Parameter | Arithmetic Growth | Geometric (Exponential) Growth |
|---|---|---|
| Mitotic Behavior | Following mitotic cell division, only one daughter cell continues to divide, while the other differentiates and matures. | Both daughter cells retain the capacity to divide continuously ($1 \to 2 \to 4 \to 8 \to 16 \dots$). |
| Mathematical Formula | $$L_t = L_0 + rt$$ | $$W_1 = W_0 e^{rt}$$ |
| Variables | $L_t$: length at time $t$; $L_0$: length at time zero; $r$: growth rate / elongation per unit time. | $W_1$: final size/weight; $W_0$: initial size; $r$: relative growth rate / efficiency index; $t$: time; $e$: base of natural logs ($2.718$). |
| Plotted Curve Shape | Linear straight line with a constant positive slope ($r$). | Classic Sigmoid (S-shaped) curve characteristic of all living cells, tissues, and whole organisms. |
| Biological Examples | Elongation of root tips or shoot tips at constant rate. | Embryo development, germinating seedling growth, bacterial culture growth. |
A typical sigmoid curve comprises three sequential phases:
- Lag Phase: Initial phase of slow growth while cells adapt, synthesize enzymes, and absorb water.
- Log (Exponential) Phase: Rapid cell division and expansion at maximal rate; nutrients and space are abundant.
- Stationary / Plateau Phase: Growth slows down and stabilizes due to limited nutrients, space, accumulation of toxic metabolites, or genetic constraints (senescence).
- Absolute Growth Rate (AGR): Measurement and comparison of total growth per unit time ($AGR = \frac{\Delta W}{\Delta t}$).
- Relative Growth Rate (RGR) / Efficiency Index: Growth per unit time expressed per unit of initial parameter ($RGR = \frac{W_1 - W_0}{W_0 \cdot \Delta t}$). It reflects the efficiency of the plant organ in producing new plant material.