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Encyclopedia > Cytoplasmic male sterility

Male sterility is defined as the failure of plants to produce functional anthers, pollen, or male gametes. The first documentation of male sterility came in 1763 when Kölreuter observed anther abortion within species and specific hybrids. It is more prevalent than female sterility, probably because, the male sporophyte and gametophyte are less protected from the environment than the ovule and embryo sac. Male sterility is easy to detect because a large number of pollen are produced and are easily studied. Male sterility is also easily assayed through staining techniques (carmine, lactophenol or iodine); while detection of female sterility requires crossing. Male sterility has propagation potential in nature since it can still set seed and is important for crop breeding, while female sterility does not. Male sterility can be aroused spontaneously via mutations in nuclear and/or cytoplasmic genes. Image File history File links Broom_icon. ... Carmine Carminic acid Carmine (IPA: []), also called Crimson Lake, Cochineal, Natural Red 4, C.I. 75470 or E120, is a pigment of a bright red color obtained from the carminic acid produced by some scale insects, such as the cochineal and the Polish cochineal, and is used as a general... For other uses, see Iodine (disambiguation). ...


Among the two types of male sterility- genic and cytoplasmic- cytoplasmic male sterility is caused by the extranuclear genome (mitochondria or chloroplast)and show maternal inheritance. Manifestation of male sterility in these may be either entirely controlled by cytoplamsic factors (cytoplasmic) or by the interaction between cytoplamsic and nuclear factors.


Cytoplasmic male sterility

Cytoplasmic male sterility as the name indicates is under extra nuclear genetic control. They show non-Mendelian inheritance and are under the regulation of cytoplasmic factors. In this type, male sterility inherited maternally. This is not a very common type of male sterile system in the plant kingdom. In general there are two types of cytoplasm viz.., N (normal) and the aberrant S (sterile) cytoplasms. These types exhibit reciprocal differences.


Cytoplasmic Genetic Male Sterility

When nuclear genes for fertility restoration (Rf) are available for CMS system in any crop, it is called as Cytoplamic Genetic Male Sterility (CGMS). This type of male sterility system is common in many plant species across plant kingdom. The sterility is manifested by the influence of both nuclear and cytoplasmic genes. There are commonly two types of cytoplasms, N (normal) and S (sterile). There are also restorers of fertility (Rf) genes, which are distinct from genetic male sterility genes. The Rf genes do not have any expression of their own unless the sterile cytoplasm is present. Rf genes are required to restore fertility in S cytoplasm which causes sterility. Thus a combination of N cytoplasm with rfrf and S cytoplasm with Rf- produces fertiles; while S cytoplasm with rfrf produces only male steriles. Another feature of these systems is that Rf mutations (i.e., mutations to rf or no fertility restoration) are frequent, so N cytoplasm with Rfrf is best for stable fertility.


Because of the convenience to control the sterility expression by manipulating the gene – cytoplasm combinations in any selected genotype, cytoplasmic genetic male sterility systems are widely exploited in crop plants for hybrid breeding. Incorporation of for male sterility evades the need for emasculation in cross pollinated species, thus encouraging cross breeding producing only hybrid seeds under natural conditions.


Cytoplasmic male sterility in hybrid breeding

Hybrid production requires a female plant in which no viable male gametes are borne. Emasculation is done to make a plant devoid of pollen so that it is made female. Another simple way to establish a female line for hybrid seed production is to identify or create a line that is unable to produce viable pollen. This male sterile line is therefore unable to self-pollinate, and seed formation is dependent upon pollen from the male line.


Cytoplasmic male sterility (CMS) is used in hybrid seed production. In this case, the sterility is transmitted only through the female and all progeny will be sterile. This is not a problem for crops such as onions or carrots where the commodity harvested from the F1 generation is produced during vegetative growth. These CMS lines must be maintained by repeated crossing to a sister line (known as the maintainer line) that is genetically identical except that it possesses normal cytoplasm and is therefore male fertile. In genic cytoplasmic male sterility restoration of fertility is done using restorer lines carrying nuclear restorer genes in crops. The male sterile line is maintained by crossing with a maintainer line which has the same genome as that of the MS line but carrying normal fertile cytoplasm.


  Results from FactBites:
 
ENGINEERING CYTOPLASMIC MALE STERILITY VIA THE CHLOROPLAST GENOME (1799 words)
Chittenden and Pellow observed in 1927 that male sterility in flax was due to an interaction between the cytoplasm and nucleus.
In 1943, Jones and Clarke established that male sterility in onion is conditioned by the interaction of the male-sterile (S) cytoplasm with the homozygous recessive genotype at a single male-fertility restoration locus in the nucleus.
Genetically engineered cytoplasmic male sterility via the chloroplast genome may be used for the safe integration of foreign genes via the nuclear genome and in those rare cases in which plastid genomes are paternally or biparentally transmitted.
Indian Agricultural Resources - Hi-Tech Agriculture (932 words)
Cytoplasmic male sterility may be transferred easily to give strain by using that strain as a pollinator (recurrent parent) in the successive generations of a backcross programme.
The male sterile line is maintained by crossing it with the pollinator strain used as the recurrent parent in the back-cross programme since its nuclear genotype is identical with that of the male sterile line.
Cytoplasmic male sterility may be utilized for producing hybrid seed in certain ornamental species, or in species where a vegetative part is of economic value.
  More results at FactBites »


 
 

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