Review Questions Meiosis
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Meiotic Prophase Abnormalities and Metaphase Cell Death in MLH1-Deficient Mouse Spermatocytes: Insights Into Regulation of Spermatogenic Progress
Developmental Biology 249, 85–95 (2002) doi:10.1006/dbio.2002.0708 Meiotic Prophase Abnormalities and Metaphase Cell Death in MLH1-Deficient Mouse Spermatocytes: Insights into Regulation of Spermatogenic Progress Shannon Eaker,1 John Cobb,2 April Pyle, and Mary Ann Handel3 Department of Biochemistry and Cellular and Molecular Biology, University of Tennessee, Knoxville, Tennessee 37996 The MLH1 protein is required for normal meiosis in mice and its absence leads to failure in maintenance of pairing between bivalent chromosomes, abnormal meiotic division, and ensuing sterility in both sexes. In this study, we investigated whether failure to develop foci of MLH1 protein on chromosomes in prophase would lead to elimination of prophase spermatocytes, and, if not, whether univalent chromosomes could align normally on the meiotic spindle and whether metaphase spermatocytes would be delayed and/or eliminated. In spite of the absence of MLH1 foci, no apoptosis of spermatocytes in prophase was detected. In fact, chromosomes of pachytene spermatocytes from Mlh1؊/؊ mice were competent to condense metaphase chromosomes, both in vivo and in vitro. Most condensed chromosomes were univalents with spatially distinct FISH signals. Typical metaphase events, such as synaptonemal complex breakdown and the phosphorylation of Ser10 on histone H3, occurred in Mlh1؊/؊ spermatocytes, suggesting that there is no inhibition of onset of meiotic metaphase in the face of massive chromosomal abnormalities. However, the condensed univalent chromosomes did not align correctly onto the spindle apparatus in the majority of Mlh1؊/؊ spermatocytes. Most meiotic metaphase spermatocytes were characterized with bipolar spindles, but chromosomes radiated away from the microtubule-organizing centers in a prometaphase-like pattern rather than achieving a bipolar orientation. -
Adaptation from Standing Genetic Variation and from Mutation
Adaptation from standing genetic variation and from mutation Experimental evolution of populations of Caenorhabditis elegans Sara Carvalho Dissertation presented to obtain the Ph.D degree in Biology Instituto de Tecnologia Química e Biológica | Universidade Nova de Lisboa Oeiras, Janeiro, 2012 Adaptation from standing genetic variation and from mutation Experimental evolution of populations of Caenorhabditis elegans Sara Carvalho Dissertation presented to obtain the Ph.D degree in Evolutionary Biology Instituto de Tecnologia Química e Biológica | Universidade Nova de Lisboa Research work coordinated by: Oeiras, Janeiro, 2012 To all the people I love. Table of contents List of Figures 3 List of Tables 5 Acknowledgements 7 Abstract 9 Resumo 13 CHAPTER 1 – Introduction 17 1.1 And yet…it changes 18 1.1.2 Evolution and adaptation 19 1.1.3 Mutation and standing genetic variation 25 Mutation 26 Standing genetic variation 32 Mutation versus standing genetic variation 34 Genetic recombination among adaptive alleles 35 1.1.4 Other players in evolution 37 1.1.5 Evolution in the wild and in the lab 40 1.1.6 Objectives 43 1.2 Caenorhabditis elegans as a model for experimental evolution 45 1.2.1 Experimental populations of C. elegans 50 1.3 References 53 CHAPTER 2 – Adaptation from high levels of standing genetic 63 variation under different mating systems 2.1 Summary 64 2.2 Introduction 64 2.3 Materials and Methods 69 2.4 Results 84 2.5 Discussion 98 2.6 Acknowledgements 103 2.7 References 103 2.8 Supplementary information 110 1 CHAPTER 3 – Evolution -
Clinical Genetics: Mitochondrial Replacement Techniques Under the Spotlight
RESEARCH HIGHLIGHTS Nature Reviews Genetics | AOP, published online 1 July 2014; doi:10.1038/nrg3784 BRAND X PICTURES CLINICAL GENETICS Mitochondrial replacement techniques under the spotlight Mutations in the mitochondrial genome have and quantitative PCR showed that PBs contain been associated with diverse forms of human dis- fewer mitochondria than pronuclei in zygotes and ease, such as Leber’s hereditary optic neuropathy than spindle–chromosome complexes in oocytes. and Leigh’s syndrome, a neurometabolic disorder. The researchers then evaluated the feasibility A preclinical mouse model now demonstrates the of PB1 or PB2 transfer in mice and compared feasibility of using polar body (PB) genomes as their efficacies with that of MST or PNT. Genetic donor genomes in a new type of mitochondrial analysis showed that oocytes generated by PB1 replacement technique aimed at preventing the genome transfer were fertilized at rates that are inheritance of mitochondrial diseases. comparable to those obtained for oocytes ferti- 2014 has seen a surge in interest from both lized after MST (89.5% and 87.5%, respectively). the UK Human Fertilisation and Embryology Moreover, 87.5% of PB1–oocytes and 85.7% Authority (HFEA) and the US Food and Drug of MST–oocytes developed into blastocysts. Administration (FDA) in evaluating methods By contrast, PNT–embryos developed into designed to prevent the transmission of mito- blastocysts more frequently than PB2–oocytes chondrial diseases. One approach that is currently (81.3% and 55.5%, respectively), despite similar under investigation is mitochondrial replacement cleavage rates. by pronuclear transfer (PNT), in which the paren- Normal live progeny were obtained with all of tal pronuclei of a fertilized egg containing the these techniques at birth rates similar to those mother’s mutated mitochondrial DNA (mtDNA) of an intact control group. -
Human Reproductive Systems Males Vs. Females Learning Goals • Students Will Describe the Basic Anatomy and Physiology of the Male and Female Reproductive Systems
Human Reproductive Systems Males vs. Females Learning Goals • Students will describe the basic anatomy and physiology of the male and female reproductive systems. Gonads are sex organs that create gametes? & excrete sex hormones Gonads are sex organs that create gametes & excrete sex hormones Male gonads are called testes Female gonads are called ovaries -Are the site of sperm production -Are the site of egg production & maturation Gametes are also called sex ?cells, and are used to create offspring with a mixture of genetic information. Gametes are also called sex cells, and are used to create offspring with a mixture of genetic information. Male gametes are called sperm Female gametes are called -produce 300-500 million per 5ml eggs/ova of semen -70,000-100,000 at birth -release 1-2 per month from puberty to menopause. Sex Hormones are chemical? signals that tell the sex organs how to function. Sex Hormones are chemical signals that tell the sex organs how to function. Male hormone is called Female hormones are estrogen testosterone and progesterone -released from the testes -released from the ovary -controls sperm production -controls egg production & release Duct systems help deliver gametes from gonads and are the site of fertilization in females and delivers sperm out of the body in males. Male duct systems include: Epididymis -site of sperm maturation (about 20 days for sperm to mature) Male duct systems include: Vas deferens -Tube for sperm to travel through as they leave the testes Male duct systems include: Urethra -shared tube for release of semen from reproductive tract and urine from the bladder. -
Algal Sex Determination and the Evolution of Anisogamy James Umen, Susana Coelho
Algal Sex Determination and the Evolution of Anisogamy James Umen, Susana Coelho To cite this version: James Umen, Susana Coelho. Algal Sex Determination and the Evolution of Anisogamy. Annual Review of Microbiology, Annual Reviews, 2019, 73 (1), 10.1146/annurev-micro-020518-120011. hal- 02187088 HAL Id: hal-02187088 https://hal.sorbonne-universite.fr/hal-02187088 Submitted on 17 Jul 2019 HAL is a multi-disciplinary open access L’archive ouverte pluridisciplinaire HAL, est archive for the deposit and dissemination of sci- destinée au dépôt et à la diffusion de documents entific research documents, whether they are pub- scientifiques de niveau recherche, publiés ou non, lished or not. The documents may come from émanant des établissements d’enseignement et de teaching and research institutions in France or recherche français ou étrangers, des laboratoires abroad, or from public or private research centers. publics ou privés. Annu. Rev. Microbiol. 2019. 73:X–X https://doi.org/10.1146/annurev-micro-020518-120011 Copyright © 2019 by Annual Reviews. All rights reserved Umen • Coelho www.annualreviews.org • Algal Sexes and Mating Systems Algal Sex Determination and the Evolution of Anisogamy James Umen1 and Susana Coelho2 1Donald Danforth Plant Science Center, St. Louis, Missouri 63132, USA; email: [email protected] 2Sorbonne Université, UPMC Université Paris 06, CNRS, Algal Genetics Group, UMR 8227, Integrative Biology of Marine Models, Station Biologique de Roscoff, CS 90074, F-29688, Roscoff, France [**AU: Please write the entire affiliation in French or write it all in English, rather than a combination of English and French**] ; email: [email protected] Abstract Algae are photosynthetic eukaryotes whose taxonomic breadth covers a range of life histories, degrees of cellular and developmental complexity, and diverse patterns of sexual reproduction. -
REVIEW Physiological Dependence on Copulation in Parthenogenetic Females Can Reduce the Cost of Sex
ANIMAL BEHAVIOUR, 2004, 67, 811e822 doi:10.1016/j.anbehav.2003.05.014 REVIEW Physiological dependence on copulation in parthenogenetic females can reduce the cost of sex M. NEIMAN Department of Biology, Indiana University, Bloomington (Received 6 December 2002; initial acceptance 10 April 2003; final acceptance 27 May 2003; MS. number: ARV-25) Despite the two-fold reproductive advantage of asexual over sexual reproduction, the majority of eukaryotic species are sexual. Why sex is so widespread is still unknown and remains one of the most important unanswered questions in evolutionary biology. Although there are several hypothesized mechanisms for the maintenance of sex, all require assumptions that may limit their applicability. I suggest that the maintenance of sex may be aided by the detrimental retention of ancestral traits related to sexual reproduction in the asexual descendants of sexual taxa. This reasoning is based on the fact that successful reproduction in many obligately sexual species is dependent upon the behavioural, physical and physiological cues that accompany sperm delivery. More specifically, I suggest that although parthenogenetic (asexual) females have no need for sperm per se, parthenogens descended from sexual ancestors may not be able to reach their full reproductive potential in the absence of the various stimuli provided by copulatory behaviour. This mechanism is novel in assuming no intrinsic advantage to producing genetically variable offspring; rather, sex is maintained simply through phylogenetic constraint. I review and synthesize relevant literature and data showing that access to males and copulation increases reproductive output in both sexual and parthenogenetic females. These findings suggest that the current predominance of sexual reproduction, despite its well-documented drawbacks, could in part be due to the retention of physiological dependence on copulatory stimuli in parthenogenetic females. -
Meiosis & Sexual Reproduction Heyer 1
Meiosis & Sexual Reproduction Meiosis & Sex Cells Arise From Preexisting Cells I. Asexual (Mitotic) Reproduction a. Mitosis: production of two identical nuclei b. Cytokinesis: physical division of the cell into two II. Sexual (Meiotic) Reproduction a. Meiosis: production of four non-identical nuclei b. Cytokinesis: physical division of the cell c. Fertilization: fusion of two Sexual reproduction creates sex cells d. Syngamy: fusion of new combinations of alleles. two nuclei Diploid cells have Homologous chromosomes [Homologs]: homologous pairs of chromosomes: same loci, maybe different alleles. 1 set from mom, 1 set from dad. Meiosis: Reductive Division Sex = Meiosis + Syngamy — Reduces Chromosome Number in Half Meiosis has 2 consecutive divisions – Meiosis I: Homologous pairs separate – Meiosis II: Sister chromatids separate Each division has a prophase, metaphase, anaphase and a telophase Meiosis: Syngamy: 2n 1n 1n 2n Diploid haploid Haploid diploid Heyer 1 Meiosis & Sexual Reproduction Chromosomes Matched in Sexual Life Cycles Homologous Pairs (Homologs) Human somatic (body) cells – 23 pairs = 46 chromosomes – Homolog = same size, shape, centromere, and genes Pairs #1 - 22 = Autosomes – Both male and female Pair #23 = Sex Chromosomes – Determine gender – XX = female, XY = male Diploid life history Alternation of Generations Haploid life history (animals) (plants) (fungi) Human karyotype Somatic (body) cells are Diploid Meiosis I Gametes (sex cells) are Haploid Diploid (2n) Prophase I – Two of each kind of chromosome Chromosomes -
Mitosis Vs. Meiosis
Mitosis vs. Meiosis In order for organisms to continue growing and/or replace cells that are dead or beyond repair, cells must replicate, or make identical copies of themselves. In order to do this and maintain the proper number of chromosomes, the cells of eukaryotes must undergo mitosis to divide up their DNA. The dividing of the DNA ensures that both the “old” cell (parent cell) and the “new” cells (daughter cells) have the same genetic makeup and both will be diploid, or containing the same number of chromosomes as the parent cell. For reproduction of an organism to occur, the original parent cell will undergo Meiosis to create 4 new daughter cells with a slightly different genetic makeup in order to ensure genetic diversity when fertilization occurs. The four daughter cells will be haploid, or containing half the number of chromosomes as the parent cell. The difference between the two processes is that mitosis occurs in non-reproductive cells, or somatic cells, and meiosis occurs in the cells that participate in sexual reproduction, or germ cells. The Somatic Cell Cycle (Mitosis) The somatic cell cycle consists of 3 phases: interphase, m phase, and cytokinesis. 1. Interphase: Interphase is considered the non-dividing phase of the cell cycle. It is not a part of the actual process of mitosis, but it readies the cell for mitosis. It is made up of 3 sub-phases: • G1 Phase: In G1, the cell is growing. In most organisms, the majority of the cell’s life span is spent in G1. • S Phase: In each human somatic cell, there are 23 pairs of chromosomes; one chromosome comes from the mother and one comes from the father. -
Genetic Variation in Polyploid Forage Grass: Assessing the Molecular Genetic Variability in the Paspalum Genus Cidade Et Al
Genetic variation in polyploid forage grass: Assessing the molecular genetic variability in the Paspalum genus Cidade et al. Cidade et al. BMC Genetics 2013, 14:50 http://www.biomedcentral.com/1471-2156/14/50 Cidade et al. BMC Genetics 2013, 14:50 http://www.biomedcentral.com/1471-2156/14/50 RESEARCH ARTICLE Open Access Genetic variation in polyploid forage grass: Assessing the molecular genetic variability in the Paspalum genus Fernanda W Cidade1, Bianca BZ Vigna2, Francisco HD de Souza2, José Francisco M Valls3, Miguel Dall’Agnol4, Maria I Zucchi5, Tatiana T de Souza-Chies6 and Anete P Souza1,7* Abstract Background: Paspalum (Poaceae) is an important genus of the tribe Paniceae, which includes several species of economic importance for foraging, turf and ornamental purposes, and has a complex taxonomical classification. Because of the widespread interest in several species of this genus, many accessions have been conserved in germplasm banks and distributed throughout various countries around the world, mainly for the purposes of cultivar development and cytogenetic studies. Correct identification of germplasms and quantification of their variability are necessary for the proper development of conservation and breeding programs. Evaluation of microsatellite markers in different species of Paspalum conserved in a germplasm bank allowed assessment of the genetic differences among them and assisted in their proper botanical classification. Results: Seventeen new polymorphic microsatellites were developed for Paspalum atratum Swallen and Paspalum notatum Flüggé, twelve of which were transferred to 35 Paspalum species and used to evaluate their variability. Variable degrees of polymorphism were observed within the species. Based on distance-based methods and a Bayesian clustering approach, the accessions were divided into three main species groups, two of which corresponded to the previously described Plicatula and Notata Paspalum groups. -
Cell Division- Ch 5
Cell Division- Mitosis and Meiosis When do cells divide? Cell size . One of most important factors affecting size of the cell is size of cell membrane . Cell must remain relatively small to survive (why?) – Cell membrane has to be big enough to take in nutrients and eliminate wastes – As cells get bigger, the volume increases faster than the surface area – Small cells have a larger surface area to volume ratio than larger cells to help with nutrient intake and waste elimination . When a cell reaches its max size, the nucleus starts cell division: called MITOSIS or MEIOSIS Mitosis . General Information – Occurs in somatic (body) cells ONLY!! – Nickname: called “normal” cell division – Produces somatic cells only . Background Info – Starts with somatic cell in DIPLOID (2n) state . Cell contains homologous chromosomes- chromosomes that control the same traits but not necessarily in the same way . 1 set from mom and 1 set from dad – Ends in diploid (2n) state as SOMATIC cells – Goes through one set of divisions – Start with 1 cell and end with 2 cells Mitosis (cont.) . Accounts for three essential life processes – Growth . Result of cell producing new cells . Develop specialized shapes/functions in a process called differentiation . Rate of cell division controlled by GH (Growth Hormone) which is produced in the pituitary gland . Ex. Nerve cell, intestinal cell, etc. – Repair . Cell regenerates at the site of injury . Ex. Skin (replaced every 28 days), blood vessels, bone Mitosis (cont.) – Reproduction . Asexual – Offspring produced by only one parent – Produce offspring that are genetically identical – MITOSIS – Ex. Bacteria, fungi, certain plants and animals . -
Meiosis Is a Simple Equation Where the DNA of Two Parents Combines to Form the DNA of One Offspring
6.2 Process of Meiosis Bell Ringer: • Meiosis is a simple equation where the DNA of two parents combines to form the DNA of one offspring. In order to make 1 + 1 = 1, what needs to happen to the DNA of the parents? 6.2 Process of Meiosis KEY CONCEPT During meiosis, diploid cells undergo two cell divisions that result in haploid cells. 6.2 Process of Meiosis Cells go through two rounds of division in meiosis. • Meiosis reduces chromosome number and creates genetic diversity. 6.2 Process of Meiosis Bell Ringer • Draw a venn diagram comparing and contrasting meiosis and mitosis. 6.2 Process of Meiosis • Meiosis I and meiosis II each have four phases, similar to those in mitosis. – Pairs of homologous chromosomes separate in meiosis I. – Homologous chromosomes are similar but not identical. – Sister chromatids divide in meiosis II. – Sister chromatids are copies of the same chromosome. homologous chromosomes sister sister chromatids chromatids 6.2 Process of Meiosis • Meiosis I occurs after DNA has been replicated. • Meiosis I divides homologous chromosomes in four phases. 6.2 Process of Meiosis • Meiosis II divides sister chromatids in four phases. • DNA is not replicated between meiosis I and meiosis II. 6.2 Process of Meiosis • Meiosis differs from mitosis in significant ways. – Meiosis has two cell divisions while mitosis has one. – In mitosis, homologous chromosomes never pair up. – Meiosis results in haploid cells; mitosis results in diploid cells. 6.2 Process of Meiosis Haploid cells develop into mature gametes. • Gametogenesis is the production of gametes. • Gametogenesis differs between females and males. -
Reproductive Ecology & Sexual Selection
Reproductive Ecology & Sexual Selection REPRODUCTIVE ECOLOGY REPRODUCTION & SEXUAL SELECTION • Asexual • Sexual – Attraction, Courtship, and Mating – Fertilization – Production of Young The Evolutionary Enigma of Benefits of Asex Sexual Reproduction • Sexual reproduction produces fewer reproductive offspring than asexual reproduction, a so-called reproductive handicap 1. Eliminate problem to locate, court, & retain suitable mate. Asexual reproduction Sexual reproduction Generation 1 2. Doubles population growth rate. Female Female 3. Avoid “cost of meiosis”: Generation 2 – genetic representation in later generations isn't reduced by half each time Male 4. Preserve gene pool adapted to local Generation 3 conditions. Generation 4 Figure 23.16 The Energetic Costs of Sexual Reproduction Benefits of Sex • Allocation of Resources 1. Reinforcement of social structure 2. Variability in face of changing environment. – why buy four lottery tickets w/ the same number on them? Relative benefits: Support from organisms both asexual in constant & sexual in changing environments – aphids have wingless female clones & winged male & female dispersers – ciliates conjugate if environment is deteriorating Heyer 1 Reproductive Ecology & Sexual Selection Simultaneous Hermaphrodites TWO SEXES • Advantageous if limited mobility and sperm dispersal and/or low population density • Guarantee that any member of your species encountered is the • Conjugation “right” sex • Self fertilization still provides some genetic variation – Ciliate protozoans with + & - mating