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Microscopy of Fission Yeast Sexual Lifecycle
Published on: March 9, 2016
Altering sexual reproductive mode by interspecific exchange of MAT loci
Shun-Wen Lu1, Sung-Hwan Yun, Theresa Lee
1Department of Plant Pathology & Plant-Microbe Biology, Cornell University, Ithaca, NY 14853, USA.
Abstract:
Sexual fungi can be self-sterile (heterothallic, requiring genetically distinct partners) or self-fertile (homothallic, no partner required). In most ascomycetes, a single mating type locus (MAT) controls the ability to reproduce sexually. In the genus Cochliobolus, all heterothallic species have either MAT1-1 or MAT1-2 (but never both) in different individuals whereas all homothallic species carry both MAT1-1 and MAT1-2 in the same nucleus of an individual. It has been demonstrated, previously, that a MAT gene from homothallic Cochliobolus luttrellii can confer self-mating ability on a mat-deleted strain of its heterothallic relative, Cochliobolus heterostrophus. In this reciprocal study, we expressed, separately, the heterothallic C. heterostrophus MAT1-1-1 and MAT1-2-1 genes in a mat-deleted homothallic C. luttrellii strain and asked if this converts homothallic C. luttrellii to heterothallism. We report that: (1) A C. luttrellii transgenic strain carrying C. heterostrophus MAT1-1-1 and a C. luttrellii transgenic strain carrying C. heterostrophus MAT1-2-1 can mate in a heterothallic manner and the fertility of the cross is similar to that of a wild type C. luttrellii self. Full tetrads are always found. (2) A C. luttrellii transgenic strain carrying C. heterostrophus MAT1-1-1 can mate with the parental wild type C. luttrellii MAT1-1;MAT1-2 strain, indicating the latter is able to outcross, a result which was expected but has not been demonstrated previously. (3) A C. luttrellii transgenic strain carrying C. heterostrophus MAT1-2-1 cannot mate with the parental wild type C. luttrellii MAT1-1;MAT1-2 strain, indicating outcrossing specificity. (4) Each transgenic C. luttrellii strain, carrying only a single C. heterostrophus MAT gene, is able to self, although all pseudothecia produced are smaller than those of wild type and fertility is low (about 4-15% of the number of wild type asci). These data support the argument that in Cochliobolus spp., the primary determinant of reproductive mode is MAT itself, and that a heterothallic strain can be made homothallic or a homothallic strain can be made heterothallic by exchange of MAT genes. The selfing ability of transgenic C. luttrellii strains also suggests that both MAT1-1-1 and MAT1-2-1 genes of C. heterostrophus carry equivalent transcription regulatory activities, each capable of promoting sexual development when alone, in a suitable genetic background.
Insights
Researchers explored fungal mating by transferring mating type (MAT) genes between Cochliobolus species. This study demonstrates that MAT genes alone determine sexual reproduction modes, enabling conversion between self-fertile and self-sterile states.
Area of Science:
- Mycology
- Genetics
- Molecular Biology
Background:
- Fungi exhibit sexual reproduction as either self-sterile (heterothallic) or self-fertile (homothallic).
- In Ascomycetes, the mating type (MAT) locus governs sexual reproduction, with distinct alleles (MAT1-1, MAT1-2) determining compatibility.
- Homothallic Cochliobolus species possess both MAT1-1 and MAT1-2 alleles, while heterothallic species have only one.
Purpose of the Study:
- To investigate the role of mating type genes in determining reproductive modes in Cochliobolus species.
- To determine if expressing heterologous MAT genes in a homothallic strain can alter its reproductive behavior.
- To reciprocally test the influence of MAT genes on fungal mating strategies.
Main Methods:
- Expression of MAT1-1-1 and MAT1-2-1 genes from heterothallic Cochliobolus heterostrophus in a mat-deleted homothallic Cochliobolus luttrellii strain.
- Analysis of sexual reproduction capabilities, including mating compatibility, fertility, and tetrad formation in transgenic strains.
- Reciprocal crosses between transgenic strains and parental wild-type strains to assess outcrossing specificity.
Main Results:
- Transgenic C. luttrellii strains expressing either C. heterostrophus MAT1-1-1 or MAT1-2-1 exhibited heterothallic mating, producing full tetrads.
- The parental wild-type C. luttrellii (MAT1-1;MAT1-2) successfully outcrossed with a transgenic strain expressing C. heterostrophus MAT1-1-1, but not with the MAT1-2-1 strain.
- Each transgenic C. luttrellii strain, with a single MAT gene, could self-mate, albeit with reduced pseudothecia size and fertility compared to wild type.
Conclusions:
- The mating type locus (MAT) is the primary determinant of reproductive mode (homothallism vs. heterothallism) in Cochliobolus species.
- Heterologous MAT gene exchange can convert homothallic strains to heterothallic and vice-versa, highlighting the plasticity of fungal mating systems.
- Both MAT1-1-1 and MAT1-2-1 genes possess equivalent regulatory activities, capable of promoting sexual development independently in a suitable genetic context.
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