Heterostyly is a unique form of
polymorphism
Polymorphism, polymorphic, polymorph, polymorphous, or polymorphy may refer to:
Computing
* Polymorphism (computer science), the ability in programming to present the same programming interface for differing underlying forms
* Ad hoc polymorphis ...
and
herkogamy in
flowers. In a heterostylous species, two or three morphological types of flowers, termed "morphs", exist in the population. On each individual plant, all flowers share the same morph. The flower morphs differ in the lengths of the
pistil
Gynoecium (; ) is most commonly used as a collective term for the parts of a flower that produce ovules and ultimately develop into the fruit and seeds. The gynoecium is the innermost whorl of a flower; it consists of (one or more) ''pistils'' ...
and
stamen
The stamen (plural ''stamina'' or ''stamens'') is the pollen-producing reproductive organ of a flower. Collectively the stamens form the androecium., p. 10
Morphology and terminology
A stamen typically consists of a stalk called the filame ...
s, and these traits are not continuous. The morph
phenotype is genetically
linked to
genes responsible for a unique system of
self-incompatibility, termed
heteromorphic self-incompatibility, that is, the pollen from a flower on one morph cannot fertilize another flower of the same morph.
Heterostylous plants having two flower morphs are termed "
distylous". In one morph (termed "pin", "longistylous", or "long-styled" flower) the stamens are short and the pistils are long; in the second morph (termed "thrum", "brevistylous", or "short-styled" flower) the stamens are long and the pistils are short; the length of the pistil in one morph equals the length of the stamens in the second morph, and vice versa.
Examples of distylous plants are the
primrose and many other ''
Primula'' species,
[ buckwheat, ]flax
Flax, also known as common flax or linseed, is a flowering plant, ''Linum usitatissimum'', in the family Linaceae. It is cultivated as a food and fiber crop in regions of the world with temperate climates. Textiles made from flax are known in ...
and other '' Linum'' species, some '' Lythrum'' species, and many species of '' Cryptantha''.
Heterostylous plants having three flower morphs are termed " tristylous". Each morph has two types of stamens. In one morph, the pistil is short, and the stamens are long and intermediate; in the second morph, the pistil is intermediate, and the stamens are short and long; in the third morph, the pistil is long, and the stamens are short and intermediate. '' Oxalis pes-caprae'', purple loosestrife ('' Lythrum salicaria'') and some other species of ''Lythrum'' are trimorphic.[
The lengths of stamens and pistils in heterostylous flowers are adapted for pollination by different ]pollinator
A pollinator is an animal that moves pollen from the male anther of a flower to the female stigma of a flower. This helps to bring about fertilization of the ovules in the flower by the male gametes from the pollen grains.
Insects are the maj ...
s, or different body parts of the same pollinator. Thus, pollen
Pollen is a powdery substance produced by seed plants. It consists of pollen grains (highly reduced microgametophytes), which produce male gametes (sperm cells). Pollen grains have a hard coat made of sporopollenin that protects the gametophyt ...
originating in a long stamen will reach primarily long rather than short pistils, and vice versa.[ When pollen is transferred between two flowers of the same morph, no fertilization will take place, because of the self-incompatibility mechanism, unless such mechanism is broken by environmental factors such as flower age or temperature.
]
Evolution of heterostyly
Heterostyly has evolved independently in over 25 different plant families, including the Oxalidaceae
The Oxalidaceae, or wood sorrel family, are a small family of five genera of herbaceous plants, shrubs and small trees, with the great majority of the 570 species in the genus ''Oxalis'' (wood sorrels). Members of this family typically have divid ...
, Primulaceae, Pontederiaceae, and the Boraginaceae. These families do not exhibit heterostyly across all species, and some families can exhibit both mating systems, such as among species in the genus '' Eichhornia'' (Pontederiaceae). For example, ''Eichhornia azurea
''Pontederia azurea'' is a water hyacinth from the Americas, sometimes known as anchored water hyacinth. It is the type species of ''Pontederia'' subg. ''Eichhornia'', which was previously recognized as part of the polyphyletic genus Eichhornia. ...
'' exhibits distyly, whereas another species in the same genus, '' Eichhornia crassipes,'' is tristylous.
Heterostyly is thought to have evolved primarily as a mechanism to promote outcrossing. Several hypotheses have been proposed to explain the repeated independent evolution of heterostyly as opposed to homostylous self-incompatibility: 1) that heterostyly has evolved as a mechanism to reduce male gamete wastage on incompatible stigmas and to increase fitness through male function through reciprocal herkogamy; 2) heterostyly evolved as a consequence of selection for heteromorphic self-incompatibility between floral morphs in distylous and tristylous species; and, 3) that the presence of heterostyly in plants reduces the conflict that might occur between the pollen dispersal and pollen receipt functions of the flower in a homomorphic animal-pollinated species.
Heterostyly is most often seen in actinomorphic flowers presumably because zygomorphic flowers are effective in cross- pollination.
Models
Current models for evolution include the pollen transfer model and the selfing avoidance model.
The pollen transfer model proposed by Lloyd
Lloyd, Lloyd's, or Lloyds may refer to:
People
* Lloyd (name), a variation of the Welsh word ' or ', which means "grey" or "brown"
** List of people with given name Lloyd
** List of people with surname Lloyd
* Lloyd (singer) (born 1986), American ...
and Webb in 1992 is based on the efficacy of cross-pollen transfer, and suggests that the physical trait of reciprocal herkogamy evolved first, and then the diallelic incompatibility arose afterwards as a response to the evolution of the reciprocal herkogamy. This model is similar to Darwin's 1877 idea that reciprocal herkogamy evolved as a direct response to the selective forces that increase accuracy of pollen transfer.
The alternative model - the selfing avoidance model - was introduced by Charlesworth and Charlesworth in 1979 using a population genetic approach. The selfing avoidance model assumes that the self-incompatibility system was the first trait to evolve and that the physical attribute of reciprocal herkogamy evolved as a response to the former.
Genetic determination
The supergene model describes how the distinctive floral traits present in distylous flowers can be inherited. This model was first introduced by Ernst in 1955 and was further elaborated by Charlesworth and Charlesworth in 1979. Lewis and Jones in 1992 demonstrated that the supergene
A supergene is a chromosomal region encompassing multiple neighboring genes that are inherited together because of close genetic linkage, i.e. much less recombination than would normally be expected. This mode of inheritance can be due to genomic ...
consists of three linked diallelic loci. The ''G'' locus is responsible for determining the characteristic of the gynoecium which includes the style length and incompatibility responses, the ''P'' locus determines the pollen size and the pollen's incompatibility responses, and finally the ''A'' locus determines the anther height. These three diallelic loci compose the ''S'' allele and the s alleles segregating at the supergene S locus, which is notated as ''GPA'' and ''gpa'', respectively. There have been other propositions that there are possibly 9 loci responsible for the distyly supergene in ''Primula'', but there has been no convincing genetic data to support this.
Additionally, supergene control is implied for tristyly, but there is no genetic evidence available to support it. A supergene model for tristyly would require the occurrence of two supergenes at the ''S'' and ''M'' loci.
References
External links
*{{cite journal , author=Lloyd, D. , author2=Webb, C. , author3=Dulberger, R. , date=1990, title= Heterostyly in species of Narcissus (Amaryllidaceae) and Hugonia (Linaceae) and other disputed cases, journal= Plant Systematics and Evolution, volume= 172, issue=1/4, pages= 215–227, doi=10.1007/BF00937808, jstor=23674709, s2cid=44876403
Plant morphology
Pollination