In garden peas the allele for tall plants () is dominant over the allele for dwarf plants() A true breeding tall plant is bred with a true breeding dwarf plant to produce heterozygous tall plants. These Ft heterozygotes then self fertilize to yield F2 offspring. Complete the Punnett squar combination re for this monohybrid cross with the appropriate genotype of the Fi gametes and the F2 genotype/phenotype
A) Tt Tall
B) TT Tall
C) T
D) t
E) tt Dwart

Answer:

Transduction

Explanation:

Among the three types of gene transfer in bacteria, transduction does not require physical contact between the two bacteria cell. Viruses that infect bacteria accidentally move pieces of chromosomal DNA from one bacterium to another. These viruses that infects bacteria are called bacteriophages.

Simply put, transduction is a process of genetic recombination in bacteria which involves the incorporation of the genes of a host cell (bacterium) into the genome of a viral cell (bacteriophage) and then conveyed to another host cell when the bacteriophage infects it. The process of transduction is of two types; generalized and specific depending on whether any gene or specific gene is transduced respectively.

The aim of these viruses when they infect bacteria cell is to harness the ability of bacteria to replicate, transcribe and translate their genetic material and use it to procreate into many virons or complete their viral particle.

Answer:

The correct answer is A. pollen.

Explanation:

Pollen is a very efficient way to colonize and reach further. It's believed that this adaptation is the main reason why land plants could colonize so many environments. The fact that pollen is little and easily transported also was very important.

The key adaptation facilitating the colonization of dry land by seed plants was the evolution of pollen, enabling reproduction without the need for water.

The adaptation that made possible the colonization of dry land environments by seed plants is most likely the result of the evolution of pollen. Pollen and seeds provided evolutionary advantages that enabled plants to reproduce and develop independently of water, which was crucial for their success on dry land. Pollen, as the male gametophyte, is encased in a protective coat to prevent desiccation and can be transported far from the parent plant, ensuring gene spread. This adaptation, along with the development of seeds, allowed seed plants to become widespread and diverse by being less reliant on moist environments for reproduction.

Answer: All the statement are correct.

Explanation:

In prokaryotes, an operon are unit of transcription regulation, operon are functioning unit of DNA of which consists of cluster of related genes with a single promoter and an operator.

The structural genes in the operon are either all ON or OFF at the same time, because they are controlled by a single promoter and an operator. Represible or inducible operon are all turned of off unless needed.

The DNA of an operon are generally transcribed into a single mRNA molecule which is polycistronic that codes for more than one protein

The statement 'A repressible operon is turned off unless needed' is false. Repressible operons are normally 'on' and are turned 'off' if the pathway they control is not needed.

The statement 'A repressible operon is turned off unless needed' is false. In reality, a repressible operon is typically in the 'on' state and is turned 'off' only if there is no need for the pathway it controls. These operons are typically involved in anabolic pathways. The remaining options are all true: The structural genes in the operon are indeed all on or all off at a given time, they consist of a cluster of genes with a single promoter, their DNA is transcribed into a single molecule of mRNA, and they are the units of transcriptional regulation in prokaryotes.

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Answer:

c The gene is silenced on the Y chromosome.

The genotype of chromosomes classified the humans as males and females. The females have XX chromosomes, whereas the males have XY chromosomes.

The male individual can be the carrier for a Y-linked recessive allele only when the gene on the Y chromosome is silenced.

The Y-linked recessive allele is:

Therefore, the correct answer is Option C.

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Answer:

The correct answer is A) Leprosy.

Explanation:

Leprosy is not caused by organisms entering the gastrointestinal tract. The polio virus is often transmitted by drinking water contaminated with the polio virus especially in regions with low hygiene standards. Infant botulism is caused by ingesting spores of the strain C. botulinum. In the small intestine, the spores start to colonize and multiply. The cause for adult listeriosis is in most cases the ingestion of food contaminated with L. monocytogenes.

Answer:

The exception is d) Inactivation of phosphodiesterase

Explanation:

In the presence of light:

a) The membrane potential of the photoreceptors is hyperpolarized, causing a reduction in the amount of neurotransmitter released by the photoreceptor terminal to the postsynaptic neurons

b) Sodium ions accumulate outside the plasma membrane and the receptor potential takes a form

of hyperpolarization 6. This change in membrane potential leads to the closure of calcium channels. The end result is a decrease in the secretion of the neurotransmitter glutamate by the photoreceptors

c) Visual transduction or phototransduction is the process by which a light photon generates a nervous response in the photoreceptors

d) As a consequence of phosphodiesterase activation, degradation of a molecule called cGMP (guanosine cyclic monophosphate) is stimulated

Answer: The answer is D - Intramembrane space in mitochondria; high

Explanation:

Mitochondria is an organelle in the cell, it is known as the power House of the cell because of its role in the storage and production of energy. During electron transport chain the proton pumps generate a proton gradient which is stored in form of energy.

During proton pumping and electron transfer the electrons are passed down the chain from the matrix to the inter membrane of the mitochondria. The electrons move from higher concentration of level to lower energy level. Some of these are used to pump Hydrogen ions (H+), moving them out of the matrix into the inter membrane space.

The Intramembrane space of the mitochondria therefore has a a high concentration of Hydrogen ions (H+).

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Answer: c

Explanation:Which observation is inconsistent with Haeckel's idea that "ontogeny recapitulates phylogeny"? Group of answer choices The backbone All tetrapod embryos display pharyngeal clefts, a notochord, segmentation, and paddlelike limb buds. The pharyngeal clefts and branchial arches of embryonic mammals and reptiles never acquire the form seen in adult fish. In reptile embryos, two bones develop into the articular bones of the hinge of the jaw, while these same bones become the hammer and anvil of the inner ear in marsupials. Snakes and legless lizards develop "leg buds" as embryos, only to have them reabsorbed prior to hatching.

Answer:

Genotype of parents is TtEe and TtEe

Explanation:

Given –  

Allele for tall stem is “T” and allele for short stem is “t”

Trait of tall stem is dominant over trait of short stem  

Also given allele for purple color is represented by “E” and allele for white flower is “e”

Trait of purple color is dominant over trait of white color

Genotype of Tall stems, purple flowers – TtEe or TTEE

Genotype of Tall stems, white flowers – Ttee or TTee

Genotype of Short stems, purple flowers – ttEe or ttEE

Genotype of Short stems, white flowers – ttee

This makes it clear the genotype of parents would be

TtEe and TtEe

Final answer:

The most likely genotypes for the parent plants in the question are Tt ee for the tall, white-flowered plant and Tt Ee for the tall plant with unknown flower color.

Explanation:

In a plant, the allele for tall stems (T) is completely dominant to the allele for short stems (t). A second gene located on a separate chromosome determines flower color, with the allele for purple flowers (E) being completely dominant to the allele for white flowers (e). Given the phenotype frequencies observed in the F1 offspring, we can deduce that one parent is a tall plant with white flowers. Since it has white flowers, it must be homozygous recessive for flower color (ee). As the plant is tall, it can be either heterozygous (Tt) or homozygous dominant (TT) for stem height.

The second parent plant has an unknown flower color, but because there are both purple and white flowering offspring, it must have at least one purple allele (E) passed onto the offspring. Since there are short stems in the offspring and shortness is recessive, the second parent must also have at least one recessive allele for stem height (t).

To produce the observed 3:8 ratio for each tall phenotype (purple flowers and white flowers) and the 1:8 ratio for each short phenotype, the most likely genotypes for the parents are: Tall, white-flowered plant: Tt ee (tall and homozygous recessive for flower color) and Tall, unknown flowered plant: Tt Ee (tall and heterozygous for both traits). These genotype combinations explain the observed offspring phenotypes when utilizing the principles of Mendelian inheritance.

Glucose that exceeds metabolic needs is converted and stored by the liver

Explanation:

The patient is suffering from type 1 diabetes and takes glyburide which is an oral hypoglycemic.

In the glucose pathway, excess glucose will be converted to glycogen and will be stored in the liver. Under normal conditions, when the body needs excess glucose, like in the above case after a marathon run, glycogen converts back to glucose by the processes of glycogenolysis and gluconeogenesis.

Glyburide acts against increasing blood glucose levels by inhibiting glycogen conversion to glucose in the liver.

Hence, the blood lacks the necessary amount of glucose leading to hypoglycemic conditions. Further, an imbalance of glucose efflux and influx also lead to hypoglycemia.

Hyoglycemia can cause neurogenic and sympathoadrenal symptoms like headache, confusion, tachycardia. or postural orthostatic tachycardia syndrome.

Answer: Strong differential stress generated by compressional stress was rocks were thrust westward.

Explanation:

Answer:

Recombination is less likely to separate nearby allele from the favored one  contribute(s) to this pattern.

 Explanation:

Answer:

A supertype entity

Explanation:

A supertype is a form of entity which has one or even more subgroups to relate to. A subtype is an entity type sub-group of entities that is relevant to the organisation and shares similar characteristics or relations which are different from certain sub-groups.

The entity supertype is a different form of entity type which has relationship with one or even more subtypes and includes subtypes '  of specific attributes.

Answer:

The correct answer is basal transcription apparatus.

Explanation:

The basal transcription apparatus, which binds to a core promoter, consists of general transcription factors and RNA polymerase. This apparatus is made of proteins and synthesizes mRNA.

Answer: Facultative anaerobe

Explanation: Facultative anaerobes are organisms that can live with or without oxygen supply. this organism processes carbohydrates and proteins as oxygen is taken away from its enviroment in order to derive oxygen.

The organism is a facultative anaerobe, which prefers oxygen for aerobic respiration but shifts to anaerobic respiration or fermentation when oxygen is scarce, increasing sugar consumption without significant weight gain.

The organism described is a facultative anaerobe, which is an organism that grows better in the presence of oxygen but can also proliferate in its absence. The increased consumption of sugar as oxygen is removed from the organism's environment is typical for facultative anaerobes as they switch from aerobic respiration, which is more efficient and generates more ATP, to fermentation or anaerobic respiration when oxygen is unavailable. Despite consuming more sugar via less efficient metabolic pathways in the absence of oxygen, the organism does not gain much weight due to the continuous loss of matter as carbon dioxide and water, products of cellular respiration.

Therefore, the correct answer to the organism's behavior when oxygen is removed is B. The organisms are facultative anaerobes.

Answer:

The answer is the rhomboids palpation

Explanation:

Subjects hand placed in the small of the back the rhomboids can be palpated through trapezium when the hand is moved backwards . Felt between the medial border of the scapula and vertebral column.

Answer:

C: competitive exclusion

Explanation:

The competitive exclusion principle states that organisms living in the same community while competing for the same resources cannot coexist at a constant population rate.

Once some of the species within the community get a slight competitive edge over other species, they become dominant and this might lead to the extinction of the weaker species in the long run.

In the experimental plot, the removal of sea stars provided mussel and barnacle with a competitive advantage over other species within the community (sea stars are predators of mussels and barnacles). This led to the dominance of mussel and barnacle and the eventual extinction of other species within the experimental plot as compared to the control plot.

The correct answer is C.

All animals share a common ancestor.  

Explanation:

According to various phylogenetic gene sequence analysis, there are various evidences that proved all animals originated from a common ancestor.

Initially, it was stated that all organisms descended from a single cell which then gave rise to multicellular organisms. Organisms that descend from a common ancestor are closely related and grouped.

The lineage of the common ancestor can be traced in the neoproterozoic era.

The last common ancestor or the basal animal was sea sponge according to some researchers. The last universal common ancestor is called as the concestor.  

Answer:

The correct answer is C. results in a gain for one individual and a loss for the other.

Explanation:

Predation results in one individual gaining energy, the predator, and as the principle of energy conservation says, therefore, the prey represents a loss of energy.  

In predation, there is an energy transfer from the prey to the predator. The act of predation can thus be described as a gain for one individual (the predator), and a loss for the other (the prey). So, the correct answer is option C.

The act of predation is a biological interaction where a predator, an organism that is hunting, kills and eats its prey, the organism that is attacked. Thus, in terms of energy spent and gained, predation results in a gain for one individual and a loss for the other. The predator uses energy to catch its prey, but in return, gains more energy from the prey itself, which is usually more than what was expended in the hunting process, thus resulting in a net gain. However, the prey loses both its life and any energy it had. So, the correct answer to this question is C.

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Answer:

ratio: 25% for each phenotype

Explanation:

See attached document for proper explanation of this case

Answer:

3 yellow : 1 green

Explanation:

Let yellow seed trait be represented by Y allele and green seed trait by y allele.

Purebred yellow seed plant = YY

Purebred green seed plant = yy

YY   x    yy  = Yy, Yy, Yy, Yy (all yellow)

This thus means that yellow seed trait is dominant over green seed trait.

F1  x   F1 = Yy  x   Yy, resulting in YY, Yy, Yy, yy offspring.

Since Y is dominant over y,

YY, Yy, Yy = Yellow

yy  = green

Hence, the expected phenotypic ratio of seed color of the offspring of F1 x F1 cross is 3 yellow : 1 green

In a Mendelian genetics cross where yellow seed color is dominant over green, the expected phenotypic ratio of an F1 x F1 cross is 3 (yellow):1 (green).

The question is about predicting the phenotypic ratio of seed color in the F2 generation of a cross between two F1 plants, which came from a purebred yellow seed plant and a purebred green seed plant. In the classic Mendelian genetics framework, yellow and green seed colors are controlled by a gene with two different alleles. In this case, yellow is the dominant trait and green the recessive trait.

For the F1 x F1 cross, each F1 plant is heterozygous, meaning they carry both the yellow (Y) and green (y) allele. If we use a Punnett square to determine the expected outcome from their cross, we would have:

YY, Yy, and yy.

However, because the yellow (Y) is dominant, both YY and Yy will have a yellow phenotype. Thus, the phenotypic ratio expected of seed color in the offspring from F1 x F1 would then be 3 (yellow): 1(green).

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Answer: A (Mutualism)

Explanation:

The relationship between termites and cellulose digestive microorganisms is Mutualism. This is because Termites feed on cellulose, which they get from feeding on dry woods.

Termites themselves can not degrade cellulose but the depend on microorganisms in their guts. These microorganisms releases enzymes that solely degrade cellulose.

The symbiotic relationship between termites and cellulose digestive microorganisms is Mutualism because they both depend on each other for survival. Microorganisms would not survive outside of the termite, and the termite would not be able to degrade food if it didn't have cellulose digestive microorganisms to aid in digestion.

Answer: Option D

All members of plants kingdom have multicellular embryos.

Explanation:

Kingdom plantae is the kingdom that includes all kind of plants, the seeds plant with and without flowers,green and brown algae, liverworts, mosses, ferns and so on. They all have multicellular embryos and they can undergo photosynthesids because of the presence of chloroplast.

This kingdom is divided into 5 divisions which are the peridophytes, bryophytes,thallophytes, gymnosperms and angiosperms. The bryophytes have life cycle of both sporophyte and gametophyte. Oogamus sexual reproduction is found in many protist of the order of algae and some bryophtes like fern and mossess. Egg cells surrounded by a jacket of sterile cells is found in Antheridia and bryophytes.

Answer:

Linkage

Explanation:

The existence of two loci on the same chromosome (linkage) increases the chances of the genes on these loci to assort or be inherited together.

The closer the two loci on the chromosome, the higher the chances of the two genes being inherited together and further apart they are, the lower the chances because the two genes are more likely to be separated during recombination.

Hence, if two loci on the same chromosome produce progeny that do not fit the predicted phenotypes according to the law of independent assortment, it means the two loci are linked.

The answer is linkage.

Answer:Variation in single and multiple genes.

Explanation:

This is due to changes in the sequence of nucleotides in the GENE on specific loci located on the chromosomes of the DNA molecule.

The change may be due MUTATION. Therefore the expression of phenotype may be different from Madelia laws of independent assortments of genes, because the genes may be linked together and assort jointly,(linkage), or some genes may not have full dominance over the other(incomplete dominance and codominance). Some alleles of another gene may mask or conceal the expression of other allele

Example of these exceptions to the independent assortments are Incomplete dominance, codominance, sex –linkage, epistasis, complementary genes.

Answer:

e less sensitive to dim light and more sensitive to fine detail.

Explanation:

Rods and cones are light sensitive receptors located at the back of the eye. The human eye contains between 5 million and 7 million cones and 110000000-130000000 bars.

Function

Cones and canes are essential for vision. Together they are able to detect movement, light and color, and transmit that information back to the brain.

Rods

The rods are highly sensitive cells located in the outer area of ​​the retina (the lining of the back of the eye). They are used in low light areas and are more acute to light, shape and movement changes. Rubs do not detect color.

Cones

The cones are located in the central fovea (central area of ​​the retina). They are less sensitive than rods and require bright lighting. Cones are fundamental to our ability to see color.

The cones have a high resolution and can detect the color. Its maximum sensitivity is located at a wavelength around 555 nm (yellow light). This is the so-called photopic vision, the one used during the day to see things in detail and color, making use of direct vision, the one with the highest definition. During astronomical observation, cones can also be used in the case of bright objects, such as planets or stars, whose light is intense enough to detect color. Sometimes we will also notice it in deep sky objects, such as planetary nebulae with high surface brightness.

Darkness arrives, when the light diminishes, the canes begin to work. This is the so-called scotopic vision. The rods are located outside the optical axis, with their area of ​​greatest sensitivity located at an angle of approximately 20 ° around the fovea, and a maximum sensitivity at 507 nm (green light) The rods are responsible for night vision , also being the most sensitive motion detectors. The well-known peripheral vision technique uses the rods to detect weak objects at the time of observation.

Here we can notice that the maximum sensitivity between the cones and the rods is different, 555 nm for the former and 507 nm for the latter. This has the effect that during the transition from vision with cones (photopic) to vision with rods (scoopic) the maximum response moves at shorter wavelengths. This is called the Purkinje effect, and it means that for weak sources the eye is more sensitive to blue, while for bright sources it is more red.

Cones are less sensitive to dim light and more sensitive to fine detail compared to rods. They are responsible for color vision and high visual acuity. Rods, on the other hand, work well in low light conditions and are involved in peripheral vision and motion detection.

Compared with rods, cones are less sensitive to dim light and more sensitive to fine detail. Cones are specialized photoreceptors located in the fovea, where images are focused, and are responsible for color vision and high visual acuity. In contrast, rods are distributed throughout the retina, function well in low light conditions, and are involved in peripheral vision and motion detection.

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Answer:

Osteoblast, osteocytes and osteoclasts  are responsible for breaking down bone during remodeling.

Explanation:

The process which is responsible during bone formation in equally in initial and later stages of remodelling, they are the bigger cells which are responsible for the synthesis and mineralisation  of bone. Osteocytes are the rich in cells in the bone tissue, which is helpful in detection of the mechanical loading, also manages the in bone formation and bone resorption. Osteoclast are cells that disintegrate the bone to start normal bone remodelling and also contemplate bone loss in pathologic condition by growing its resorptive capacity.

Answer:

b. more branching or folds

Explanation:

Animal size has increased during evolution on several animals, this has favored enhancements in gas exchange because this enlargement made diffusion too slow to cover internal distances in an efficient time, therefore branches and foldings were developed to cover distances quicker.

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Answer:

d) "Tell me more about your fears and concerns."

Explanation:

Statement a) implies the nurse would be imposing her choice on the patient, instead of considering the patient’s concerns and assisting her in deciding a better treatment procedure to undertake.

Statement b) cannot be the best response from the nurse because, the suggested less invasive surgical operation procedure is limited in scope and may not adequately get all the affected tissues removed. The stage of the cancer and how severe it is should inform the type of treatment the patient can be advised to undergo. A combination of treatments might also be needed depending on the stage and nature of the cancer to be treated.

Statement d) is a better response compared to c) and b) and a). Getting to know the fears and concerns of the patient would help enable the nurse to ascertain if the patient has full knowledge about the scheduled procedure as well as address, adequately, the areas that needs further clarification and remove all fears and doubts the patient is having towards the procedure she has decided to undergo.

Answer:

b.crossbridges formed