Which gland of the cane toad produces poison?
a. parotoid gland
b. tympanic membrane
c. glottis
d. eustachian tubes

Answer:

The formation of sex cells.

Explanation:

Meiosis is the process of cell division in which a single parent cell divides to form the four daughter cells. The meiosis division is also known as reduction division.

The meiosis is generally important in the sex cells. The sex cells contains the half number of chromosome as compared with the somatic cells. This type of reduction division occurs in the process of meiosis. The sex cells are haploid cells that are produced by the process of meiosis.

Thus, the correct answer is option (b).

Answer:

The most important function of meiosis is the formation of sex cells.

Explanation:

Meiosis is the process of cell division which produced haploid cells from diploid parent cells. It is called heterotypic cell division. This occurs in germ cells only.

In sexually reproducing organisms, male and female gametes fuse to form a diploid (2n) zygote. If the zygote had the same number of 2n chromosomes as somatic cells, then the zygote has a double number of chromosomes in each generation.

In reality, it does not happen. This is because of the meiotic division. It reduces the chromosome number into half. Thus fertilization does not double the chromosome number in the zygote. Meiotic division counteracts the effect of fertilization.  

Meiosis occurs only in sexually reproducing organisms. In this division synapsis of homologous chromosomes takes place. The meiosis results in tetrads at the end and crossing over occurs in this division. The genetic constituents of daughter cells differ from the parent cell.

Growth of the individual from a small body to large body, and repair of wounds occur by mitotic cell division.

Answer:

in the cell nucleus

Explanation:

Most DNA is located in the cell nucleus where it is called a nuclear DNA.

Answer:

b. all eukaryotes have mitochondria (or their remnants), whereas many eukaryotes do not have plastids.

Explanation:

It is a fact that among eukaryotes, all the reresentatives of the Domain (Eukarya) have mitochondria (more or less modified) but not all of them posses plastids.

Indeed, only a selected group of eukaryotes have acquired plastids. This group includes the autothropic algae (e.g. green algae or Chlorophytes, red algae or Rodophytes, brown algae or Phaeophyceae, etc), briophytes, and traqueophytes (vascular plants, pteridophytes, conifers and flowering plants). The endosymbiotic event that led to the formation of a plant cell initially involved an eukaryotic heterotrophic cell (that already had mitochondria and nucleus) which phagocyted a cyanobacterium. Over time, this cyanobacterium transformed into the plant cell's plastid.

Answer:

True.

Explanation:

Taxonomy may be defined as one of the main branch of biology that helps in the classification of organisms. The organisms are classified on the basis of similarities and differences among them.

Taxonomy includes the identification of an individual by looking at its morphological characters. The nomenclature ( naming of organism) and its classification in to different groups.

Thus, the correct answer is option (a).

Answer:

False

Explanation:

Spirochetes have a spiral morphology, they are prokaryotes specifically they are bacteria. Spirochetes have flexible walls  

Bacteria that are round in shape are called cocci.  

Answer:

The tendency of the bird or the inclination to sing is innate in birds, however, the song, which is sung is learned. There exists an innate tendency to sing a song whether the bird is in seclusion or not. The birds possess sensitive/critical periods when they can produce memories of the songs they learn. The anterior forebrain pathway or the anterior vocal pathway is the template for learning a song by the bird.

Answer:

Final step: Glucose-6-phosphate is converted to glucose  

Explanation:

Gluconeogenesis is the synthesis of glucose occuring during hypoglycaemia. The final step is catalyzed by glucose phosphatase which removes the phosphate group from glucose-6-phosphate.

Answer:

(B) Ciprofloxacin treatment kills or halts the growth of the sensitive strains, yet the resistant strains survive.

Explanation:

Campylobacter jejuni is the causal agent of the food-borne infection with the highest incidence in Europe. Both poultry and wild birds are a major reservoir of the bacteria, the bacteria lives in the intestines of warm blooded animals but is only quite harmful to humans. It has been identified that the diversity fo genes is responsible for its resistance to antibiotics.

Answer:

Termination factor.

Explanation:

Translation may be defined as the process of formation of the protein from the RNA molecule y the help of enzymes and translation factors. The translation occurs in 5' to 3' direction.

The three main steps of the translation are initiation, elongation and termination. The release factors or translation termination factors binds to the stop codons and results in the translation termination. Prokaryotes release factors include RF1, RF2, and RF3 that binds to the stop codons.

Thus, the correct answer is option (c).

Answer:

The correct answer is option a. "True".

Explanation:

Bufo marinus is the world's largest toad, it is native from South and Central America but it has been introduced to islands in Oceania and the Caribbean. Bufo marinus rapidly flipps its tongue to catch its prey for eating and defensive purposes. Bufo marinus has its tongue attached at the anterior part of the buccal cavity, while posterior margin of the tongue lies freely. This morphology allows Bufo marinus to make the quick movement needed to catch its prey.

Answer:

The correct answer will be option-true.

Explanation:

Follicular stimulatory hormone or FSH and inhibin are the complex proteins which play a various biological role in the reproductive system.

The FSH stimulates the secretion of inhibin from the gonads in both males (Sertoli cells) and females (granulosa layer). The production of inhibin suppresses the secretion of FSH from the pituitary gland.

The suppression of FSH directly suppresses the secretion of further inhibin and thus, option-true is the correct answer.

Answer:A

Explanation:

Answer: A. True

Explanation: "Peristalsis. Peristalsis is a series of muscular contractions that propel food through the small intestine. These kinds of controls help you get the most nutrients out of your food. ... This coordinated contraction of smooth muscle keeps food moving on its one-way path through your digestive system."

Answer:

c. Three

Explanation:

There are  3 lobes found in Bufo Marinus liver.

The right lobe, the left anterior lobe, and the left posterior lobe.

The liver is not primarily an organ of digestion, it does secrete a digestive juice called bile.

Answer: Thecorrect answer would be

3' GGGAACCTTGATGTTTCGGCTCTAATT 5'

Explanation:

DNA and RNA are nucleic acids, that is, polymers of nucleotide. DNA consists of adenine, guanine, cytosine, and thymine. In contrast, RNA contains uracil in place of thymine. Rest three nucleotide are same.

Please note that transcription (DNA to RNA) as well as reverse transcription (RNA to DNA) is done on the basis of base complementary nature.

The base pairs are:

So, if adenine is present in DNA then uracil will be incorporated in RNA and vice-versa.

For example, the initial 5 nucleotide of given RNA are 5' CCCUU...3'

So, in DNA, based on base complementary rule, G will be incorporated against C and A will be incorporated against U. Thus, the DNA sequence would be 3' GGGAA...5'.

Similarly, the whole sequence can be worked out.

Final answer:

The complementary DNA sequence would be: 3' GGGAA CCTTGAUGUUUCGGCUCTAA 5'

Explanation:

To find the sequence of bases in the first strand of DNA complementary to the given RNA sequence, we need to use the complementary base pairing rules:

Adenine (A) pairs with Thymine (T) in DNA or Uracil (U) in RNA.

Thymine (T) pairs with Adenine (A) in DNA.

Cytosine (C) pairs with Guanine (G).

Given the RNA sequence:

5' CCCUUGGAACUACAAAGCCGAGAUUAA 3'

The complementary bases for DNA are:

Adenine (A) → Thymine (T)

Uracil (U) → Adenine (A)

Cytosine (C) → Guanine (G)

Guanine (G) → Cytosine (C)

So, the complementary DNA sequence would be: 3' GGGAA CCTTGAUGUUUCGGCUCTAA 5'.

A mutagen is a physical or chemical agent that permanently changes genetic material, usually DNA, in an organism and increases the frequency of mutations. Mutagens are used in genetic research to induce mutations and study their effects on organisms.

A mutagen is a physical or chemical agent that permanently changes genetic material, usually DNA, in an organism and increases the frequency of mutations above the natural background level. Mutagens are used in genetic research to induce mutations and study the effects of these mutations on organisms. They are used to investigate gene function, understand the causes of genetic diseases, study the mechanisms of evolution, and develop new treatments for diseases.

Cellular respiration breaks down carbon skeletons obtained from polysaccharides, proteins, and lipids for energy.

Carbon skeletons to be broken down during cellular respiration can be obtained from polysaccharides, proteins, and lipids. This means option E is correct.

Answer:

Somatic cells are the ones obtained by mitosis. They constitute the body tissues and have a variety of different functions. They are diploid, which means they have two copies of each chromosome (2n), one obtained from the father and one from the mother.

Gametes are obtained by meiosis. A diploid cell divides to form four haploid gametes, they have a single copy of each chromosome (n), obtained from the parent cell.

Zygotes are obtained by the fusion of two gametes, one from the father and one from the mother, they are diploid again having two copies of each chromosome.

Answer:

A virus is a tiny infectious biological agent that can only replicate or duplicate inside the host cell. These infectious agents can infect all different types of living organisms ranging from animals and plants to microorganisms and archaea and bacteria.

Virions are ineffective particle or form of the virus outside of the host cell, with RNA or DNA and a protein capsid.

The main role of these infectious agent virions is to transfer the DNA or RNA genome from itself to the cell of host and expressed the gene which means produce proteins from the genome transferred to the host cell.

The correct answer is E. All of the above

Explanation:

Eating disorders include multiple mental disorders such as anorexia, bulimia, rumination disorder or binge eating disorder in which individuals have negative eating habits that have serious consequences on their health including both mental and physical aspects.

In terms of physical health most eating disorders imply the individual restricts its diet or does not consume the nutrients or substances that are necessary to be healthily including insufficient fat, this leads not only to weight loss but also to disruption in the menstrual cycle as this lead to hormonal imbalances and therefore this might also be linked to sterility. Besides this, individuals with eating disorders are more prompt to develop conditions such as kidney or osteoporosis that occurs as bones thin or lose density due to the lack of nutrients. Thus, all of the options are likely the consequences of insufficient fat in eating disorders.

Answer:

e. bu cv+

Explanation:

The genes bu+/bu and cv+/cv are autosomal and linked --> each homologous chromosome has an allele of both bu+/bu and cv+/cv genes.

The cockroach is heterozygous for both genes, and they are in repulsion.

That means that on one of the homologous chromosomes one of the genes has a dominant allele and the other gene has the recessive allele, and on the other homologous chromosome the alleles are arranged in the opposite way.

In this case, the genotype of the cockroach would be best written as:

The most common gametes will be the parentals, i.e. gametes in which crossing-over between homologous chromosomes did not happen and therefore have the same distribution of alleles as the parental individual.

For those reasons, the most common gametes will be:

The most common gametes produced by this cockroach will be bu⁺ cv and bu , cv⁺. Among the provided options, the set containing these genes is e. bu cv⁺. The correct answer is e. bu cv⁺

To solve this problem, let's first understand what it means for the genes to be in "repulsion" and then determine the most common gametes produced by the cockroach with the genotype bu⁺ bucv⁺ cv.

Key Points:

Linked Genes in Repulsion: When genes are in repulsion, it means that each chromosome in the homologous pair carries one dominant and one recessive allele of the two genes.

Genotype of the Cockroach: bu⁺ bucv⁺ cv

This means the cockroach has one chromosome with bu⁺ cv and another with bucv⁺ .

Chromosome Arrangement:

The chromosomes can be represented as:

One chromosome has bu⁺cv

The other chromosome has bucv⁺

Most Common Gametes:

Since the genes are linked and in repulsion, the most common gametes will be those that reflect the original arrangement of alleles on the chromosomes without recombination. Therefore, the two most common types of gametes will be:

bu⁺ cv

bu , cv⁺

These combinations are produced without crossing over between the linked genes.

Answer:

Phosphofructokinase-1

Explanation:

Phosphofructokinase-1 catalyzes the phosphorylation of fructose 6-phosphate into fructose 1,6-bisphosphate. The reaction is exergonic with a large negative free energy change to make it essentially irreversible.  

Phosphofructokinase-1 is an allosteric enzyme with regulatory sites. Higher ATP concentration serves to inhibit the phosphofructokinase-1 by binding to the allosteric site of the enzyme and thereby reducing its affinity for the substrate (fructose 6 phosphate).

Hexokinase is a glycolytic enzyme that catalyzes an irreversible conversion of glucose to glucose-6-phosphate, which is critical for the continuation of the glycolytic pathway.

One enzyme of glycolysis that catalyzes an essentially irreversible step is hexokinase. This enzyme is responsible for the phosphorylation of glucose, producing glucose-6-phosphate at the beginning of the glycolytic pathway. Such a reaction is biologically irreversible, meaning the enzyme cannot readily catalyze the reverse reaction. In fact, this step is so crucial that when hexokinase is inhibited, glucose can diffuse out of the cell, preventing it from becoming a substrate for cellular respiration.

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Answer:

Explanation:

he cell division of eukaryotes consists of 2 types of division - mitosis, and meiosis. Both the cell divisions have karyokinesis which follows the cytokinesis. It takes some hours and an indirect type of cell division. The mitotic chromosomes and meiotic chromosomes show different behaviors -  

In mitosis, the cell divides one time while in meiosis the cell divides 2 times. DNA replication occurs during interphase in mitosis. In meiosis DNA replication happens in the first cell division and no DNA replication in the second cell division.

There is no synapsis in the mitotic chromosome. In meiosis, synapsis occurs in homologous chromosomes. It has seen in the prophase I of meiosis.

The 2 chromatids of the chromosome do not exchange their segments in mitosis. In meiosis the chromatids of 2 homologous chromosome exchange segments. This results in the crossing over between the 2 homologous chromosomes.

The mitotic chromosome, each chromosome joined by a centromere. The meiotic chromosome forms tetrads from bivalent. The bivalent consists of 2 centromeres where the tetrads are attached.

In mitosis, the chromosomes separate slowly during anaphase. but in meiosis short chromosomes separate early, and long chromosomes take some time to separate.

Answer:

Fungi show symbiotic association with algae and plants. With plants, they thrive as endophytes in a form of the symbiotic association. This symbiotic association results in the emergence of novel characteristics in the world of biology.  

The lichens function as a tool in finding the quality of air, as they grow in the environment containing good air quality. The tolerance towards heat is another characteristic. Some of the endophytes are witnessed in the plants, which grows in very hot conditions.  

At such conditions, no fungi or plant can thrive, however, in the symbiotic association, they possess the tendency to thrive. If one tries to separate them, it results in death of both.  

Symbiotic associations between fungi, plants, and algae contribute to increased nutrient cycling, enhanced plant growth, and ecosystem stability, fostering emergent properties in biological communities.

Nutrient Exchange:  fungi form associations with plant roots, facilitating the absorption of water and essential nutrients like phosphorus and nitrogen.

This enhanced nutrient uptake benefits both the plants and the fungi, leading to healthier and more productive vegetation.

As a result, the increased plant biomass supports a broader range of herbivores and, in turn, predators, contributing to the complexity of food webs within biological communities.

Improved Plant Tolerance: Symbiotic fungi can also improve a plant's tolerance to various environmental stressors, such as drought or heavy metal contamination.

This enhanced resilience can allow for the coexistence of diverse plant species in the same ecosystem, further increasing biodiversity.

Carbon Sequestration: Mycorrhizal fungi, in association with trees, contribute to carbon sequestration.

This sequestered carbon helps mitigate climate change by reducing atmospheric carbon dioxide levels.

Ecosystem Stability: The overall effect of these fungal-plant associations is an increase in ecosystem stability.

The presence of these relationships helps buffer ecosystems against disturbances and allows for the persistence of diverse species, making the community more resilient in the face of environmental changes.

The symbiotic associations between fungi, plants, and algae promote nutrient cycling, improve plant tolerance, sequester carbon, and enhance ecosystem stability, leading to emergent properties that foster greater biodiversity and complexity within biological communities.

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Answer: False

Explanation:

Pathogens can be transmitted in many ways. It can spread by direct contact, indirect contact, or by vectors.

The mode of transmission can be skin contact, airborne particles, touching a surface, bodily fluids, touched by an infected person.

The mode of transmission can be vector that carries disease and helps in disease transmission.

So, the pathogens can be transmitted by direct contact, indirect contact or by vectors and by many more ways.

Answer:

a. Genetic drift

Explanation:

Answer and explanation:

The garden pea had many advantages to be used as a model in inheritance studies. These plants grow very fast, so you can rise several generations in little time. This fundamental if you want to do this kind of studies. The study object needs to have a brief generational time, so they can be selected and their descendants can be raised again. Another advantage was that garden peas can be raised easily. They don't need any special care. Besides, they were common in the market. Mendel could find them and bought them any time that he wants. Also, they presented visible characteristics that could vary from one plant to another. Some pea gardens had violet flowers, while others had white flowers. Some were tall, while others were small. These made possible to select plants with specifics features and to study if they could transmit these features to the next generations.

It could be really difficult to do the same experiment in humans. several years would have to pass to observe new generations, so during the lapse time of the researcher, only a few human’s generations could be studied.

Answer:

C. Get tested because her father could be a carrier

Explanation:

As Huntington Disease is an inherited dominant disease, it means that is enough the presence of one allele to develop illness. Her paternal grandfather was affected but not her father great-great grandmothers.  Is her father, carrier of an HD allele? The problem here is that we can’t be sure her father is not a carrier, because although he’s 40 years old and doesn’t show symptoms of illness, HD uses to appear between 30 to 50 year old ages, but it can appear at any age.   Eventually a possibility for the disease to appear, is still possible.

Answer:

If an individual Drosophila has two or more populations of cells comprising different genotypes from one single egg then it is termed as twin spots or mosaic.

Explanation:

There might be different reasons for mosaic to occur like

Nondisjunctioning of the chromosomes

Lag in anaphase

Endoreplication

Mutations in a single cell

Mitotic recombination:

One of the major ways through which mosaic or twin spots arise is the mitotic recombination. It is also termed as somatic cross over. Twin spot or mosaic generally occurs if there is linking of heterozygous genes in repulsion. The recombination generally happens among the centromeres from the adjacent genes.

A common example of the mitotic recombination is the Bloom's syndrome. Bloom's syndrome is caused due to the mutation that occurs in the blm gene. As a result, there are defects in the BLM protein produced.

Answer:

(A) homospory

Explanation:

Homospory is a type of reproduction found in pteridophytes. This character does not appear in gymnosperm or angiosperm hence it could not favor life on land.  

The exception from the four traits is : ( A ) Homospory

The seed plants survive on land when planted due to certain key features that seed plants possesses and some of these key features are

While Homospory is not a key feature of seed plants it is form of reproduction that is found in pteridophytes. therefore it cannot favor the growth of plants on land.

Hence we can conclude that The exception from the four traits is : ( A ) Homospory