Without genetic variation, natural selection would not be possible. Explain why.

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Answer 1

Answer:

Without genetic variation, natural selection is only able to grow the number of allelomorphs that previously exited in the population. Natural selection occurs through an interaction between the environment and the variability of the individual organisms making up a population. If every giraffe had the same neck length, there would be nothing to change and they would never have a long neck by now.


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Sister chromatids move to opposite poles of the cell during (Check all that apply.)- anaphase I of meiosis- metaphase I of meiosis- anaphase II of meiosis- anaphase of mitosis

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Sister chromatids move to opposite poles of the cell during Anaphase I of meiosis, Anaphase II of meiosis and Anaphase of mitosis

During meiosis, homologous chromosomes and sister chromatids are separated and moved to opposing poles of the cell during anaphase I and anaphase II, respectively.

This is an important phase in the segregation of genetic material during meiosis, which leads to the creation of haploid gametes.

Sister chromatids are split and sent to opposing poles of the cell during anaphase of mitosis, ensuring that each daughter cell obtains a complete and identical set of genetic material.

This is an important phase in cell division and is required for multicellular organisms to grow and develop.

Homologous chromosomes align at the metaphase plate during meiosis, however sister chromatids are still bound together by cohesion.

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Sister chromatids move to opposite poles of the cell during Anaphase I of meiosis, Anaphase II of meiosis and Anaphase of mitosis

During meiosis, homologous chromosomes and sister chromatids are separated and moved to opposing poles of the cell during anaphase I and anaphase II, respectively. This is an important phase in the segregation of genetic material during meiosis, which leads to the creation of haploid gametes.

Sister chromatids are split and sent to opposing poles of the cell during anaphase of mitosis, ensuring that each daughter cell obtains a complete and identical set of genetic material.

This is an important phase in cell division and is required for multicellular organisms to grow and develop.

Homologous chromosomes align at the metaphase plate during meiosis, however sister chromatids are still bound together by cohesion.

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In SDS-PAGE, protein sample is first treated with detergent sodium dodecyl sulfate(SDS), in order to
a. make the protein become negatively charged.
b. make the protein become positively charged.
c. renature the protein
d. adjust the pH of protein

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When a protein sample is treated with SDS in SDS-PAGE, the SDS molecules bind to the protein and coat it with a negatively charged layer (Option A).

What is SDS-PAGE?

Sodium dodecyl-sulfate polyacrylamide gel electrophoresis (SDS-PAGE) is commonly used to obtain high resolution separation of complex mixtures of proteins. The method initially denatures the proteins that will undergo electrophoresis. In SDS-PAGE, a protein sample is first treated with detergent sodium dodecyl sulfate (SDS) in order to make the protein become negatively charged. This causes the protein to become uniformly negatively charged, which allows it to be separated based on its size and shape during electrophoresis.

Thus, the correct option is A.

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as the embryo begins gastrulation, the number of cells is between

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Gastrulation is a process of transformation from a single layer of cells to a three-layered embryo. It marks the beginning of differentiation and regionalization of cells and the beginning of organogenesis.

 The process starts with a group of cells known as the blastula, which is composed of a single layer of cells in the shape of a hollow sphere. As gastrulation starts, the blastula cells combine to form an inner and an outer layer of cells called the ectodermal and the endodermal layers. In between these two layers a third layer of tissue, the mesoderm develops.

 The number of cells during gastrulation varies between species, and the exact number cannot be easily determined. However, the average is around 500-800 cells. The number of cells increases during the duration of the process, as more cells are generated and existing cells begin to divide and differentiate.

    Gastrulation is a fascinating and complex process that is essential for the formation of the embryo and the development of the body. The number of cells present during gastrulation is key to the successful formation of the organism, and understanding the number of cells can offer us insight into the development of the organism.

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Imagine that you are an oxygen atom and two of your friends are hydrogen atoms. Together, you make up a water molecule. Describe the events and changes that happen to you and your friends as you journey through the light-dependent reactions and the Calvin cycle of photosynthesis. Include illustrations with your description

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When you are a part of the water molecule, you cannot be utilized in photosynthesis as you are stable and cannot be easily broken down.

However, when water molecules are split apart by the light-dependent reactions of photosynthesis, the oxygen atoms get separated from their hydrogen atoms. During photosynthesis, the light-dependent reactions and the Calvin cycle work together to convert solar energy into glucose. The first stage of photosynthesis involves the light-dependent reaction that occurs within the thylakoid membrane of the chloroplast. During this reaction, the oxygen atom is formed when light is absorbed by the chlorophyll. The excited electrons from the chlorophyll are then transported to another molecule to release the energy that drives the synthesis of ATP.

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Exteroceptors can process stimuli from all of the following except... A. Music from a radio. B. Blinking car taillight. C. Sip of cold water

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Answer:

✔ ∅ C. Sip of cold water

Explanation:

Exteroceptors can process stimuli from all of the following except...

O A. Music from a radio.

O B. Blinking car taillight.

✔ ∅ C. Sip of cold water

which tool is used to calculate interference between two mating components

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The tool used to calculate interference between two mating components is called a tolerance analysis tool.

In engineering and manufacturing, it is essential to ensure that mating components fit together properly. Interference refers to the undesirable overlap or clashes between two mating parts. To calculate the interference and ensure proper fit, engineers utilize tolerance analysis tools.

Tolerance analysis tools are software applications specifically designed to analyze the dimensional and geometric variations of components within a system. These tools take into account the specified tolerances for each component and simulate the assembly process to evaluate potential interference issues.

The tool allows engineers to input the dimensional data and tolerances of the mating components. It then performs calculations and simulations to determine if there is any interference or excessive clearance between the parts. By considering the tolerance stack-up, which accounts for cumulative variations in dimensions, the tool helps identify potential problem areas and enables engineers to make informed decisions regarding adjustments or modifications to ensure proper fit and functionality.

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a surgical procedure to promote rapid weight loss is the removal of most of the: a. liver. b. jejunum. c. pancreas. d. duodenum. e. ileum.

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Answer: Duodenum

Explanation:

Chromosome number can evolve by smaller-scale changes than duplication of entire chromosome sets. For example, domestic horses have 64 chromosomes per diploid set while Przewalski's horse, an Asian subspecies, has Przewalski's horse is thought to have evolved from an ancestor with chromosomes. The question is: Where did its extra chromosome pair originate?

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The extra chromosome pair in Przewalski's horse (Equus przewalskii) likely originated from a chromosomal fusion event. Chromosomal fusion occurs when two separate chromosomes, each with their own centromere, become fused together to form a single chromosome with a single centromere.

In the case of Przewalski's horse, it is thought that the ancestor had a diploid chromosome number similar to that of domestic horses (64 chromosomes). However, at some point in the evolutionary history of Przewalski's horse, a fusion event occurred, leading to the formation of one large chromosome by the fusion of two smaller chromosomes.

The specific details of which chromosomes fused in Przewalski's horse are still being studied and researched. However, chromosomal fusions are known to occur through various mechanisms, such as Robertsonian translocations or non-homologous end joining (NHEJ) repair processes.

The fusion event resulted in a reduction in the total chromosome number, with Przewalski's horse having one less pair of chromosomes compared to domestic horses. This illustrates that changes in chromosome number can occur through smaller-scale events, such as chromosomal fusions, rather than duplication or loss of entire chromosome sets.

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Why are ads for milk and eggs often done at the industry level, rather than by individual companies?

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Ads for milk and eggs are often done at the industry level, rather than by individual companies, because these products are considered to be basic commodities

that are produced and consumed by many different companies and individuals. Milk and eggs are products that are not easily differentiated from one brand to another,

so it makes more sense for the industry as a whole to promote these products, rather than individual companies.



In addition, the production of milk and eggs is highly regulated by government agencies, which means that advertising for these products is often subject to strict guidelines and standards.

By advertising at the industry level, companies can ensure that their messages are compliant with these regulations and that they are not making false or misleading claims about the products they are selling.



Another reason why ads for milk and eggs are often done at the industry level is that it allows companies to pool their resources and share the cost of advertising.

This can be particularly beneficial for smaller companies that may not have the financial resources to fund their own advertising campaigns.

Overall, advertising at the industry level for products like milk and eggs makes sense because it allows companies to promote

these basic commodities in a way that is compliant with regulations, cost-effective, and beneficial for the industry as a whole.

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The second segment of a composite tolerance specification is not required to include datum feature references. F. True or False?

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True. The second segment of a composite tolerance specification is not required to include datum feature references.

The second segment specifies the allowable variation in the size, location, or orientation of the features of the part being measured.

This segment is often used to define a position tolerance zone in which the feature or features must fall. However, it does not necessarily require the use of datum features.

Datum features are typically used in the first segment of a composite tolerance specification, which defines the primary datum and the reference axis or plane from which all other features are measured.

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a blood alcohol concentration of .08 indicates that

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A blood alcohol concentration of 0.08 indicates that a person has 0.08 grams of alcohol per 100 milliliters of blood.

In many countries, this level of alcohol in the blood is considered the legal limit for driving. At this concentration, a person may experience impaired judgment, reduced coordination, and difficulty concentrating, making it unsafe to operate a vehicle or heavy machinery. It is important to note that the effects of alcohol can vary widely depending on individual factors such as body weight, age, gender, and metabolism, and that even small amounts of alcohol can impair driving ability. It is always safest to avoid driving or operating machinery after consuming alcohol.

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a cell has a plasma membrane with multiple folds. why does it have that shape?

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The cell has a plasma membrane with multiple folds to increase its surface area, allowing for more efficient exchange of materials with the environment and enhancing cellular functions.

The folding of the plasma membrane, often referred to as microvilli or microvillus projections, serves to increase the available surface area for various cellular processes. These folds are especially important in cells that are involved in absorption, secretion, or transportation of molecules. By increasing the surface area, the cell can maximize its interactions with the surrounding environment, facilitating the exchange of nutrients, ions, and other molecules. This is crucial for cells that are involved in processes like nutrient absorption in the intestines or gas exchange in the lungs.

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how are mrna s stored within the cell in a translationally inactive state? place the labels in their respective targets.

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As an AI language model, I cannot generate an image or diagram to place labels in their respective targets, but I can describe how mRNA is stored in a translationally inactive state.

mRNA molecules can be stored in a translationally inactive state through various mechanisms. One common method is the binding of regulatory proteins to specific sequences in the mRNA molecule known as untranslated regions (UTRs).

These proteins can prevent the ribosome from binding to the mRNA molecule, thereby inhibiting translation. Additionally, mRNA molecules can be stored in specialized structures called processing bodies (P-bodies), which contain enzymes that degrade mRNA molecules.

In P-bodies, mRNA molecules are sequestered away from ribosomes, preventing translation. Finally, mRNA molecules can be stored in a complex with RNA-binding proteins, which can inhibit translation by masking the ribosome-binding site or promoting degradation of the mRNA molecule.

Overall, the mechanisms used to store mRNA in a translationally inactive state serve important roles in regulating gene expression and ensuring that protein production is tightly controlled within cells.

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the presence of which of the following weeds can be an indicator of low soil n:

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Gardeners to take appropriate measures to enhance nitrogen levels for better plant growth and productivity.

Which weeds can serve as indicators of low soil nitrogen levels?

The presence of certain weeds can serve as indicators of low soil nitrogen (N) levels. Weeds that thrive in nitrogen-deficient soil often possess specific adaptations that enable them to compete for limited nitrogen resources.

Some common weed species that indicate low soil nitrogen include clover, purslane, lamb's quarters, pigweed, and nettle.

These weeds have the ability to fix atmospheric nitrogen or extract nitrogen from deeper soil layers, allowing them to flourish in nitrogen-depleted conditions.

Additionally, their rapid growth and ability to outcompete other plants in low-nitrogen environments further highlight their association with nitrogen-deficient soils.

Monitoring the presence of these weeds can provide valuable insights into the nitrogen status of the soil, guiding farmers and gardeners to take appropriate measures to enhance nitrogen levels for better plant growth and productivity.

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the boundaries of a city are pushing outward, with new construction including roads and buildings. which effect on the local ecosystem is most likely?

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The expansion of a city and its construction of new roads and buildings is likely to have a significant impact on the local ecosystem. This impact can take many forms, including habitat loss, fragmentation, and alteration of natural ecosystems.

When natural areas are converted into urban landscapes, native plants and animals can be displaced, and the overall biodiversity of the area can be reduced.

Additionally, urban development can lead to increased pollution, including air and water pollution, which can have negative impacts on the health of local ecosystems. Increased noise pollution can also disrupt wildlife behavior, leading to decreased reproductive success and increased stress levels.

However, there are also potential benefits to the ecosystem that can come from urban development. For example, new parks and green spaces can provide important habitat for native species and help to mitigate the effects of urbanization. Careful planning and design can also help to minimize the impact of new construction on the natural environment.

Ultimately, the impact of urbanization on the local ecosystem will depend on a variety of factors, including the specific location of the development, the size and scale of the construction, and the steps taken to mitigate its effects. It is important for planners and developers to carefully consider the potential impacts of their projects and to take steps to minimize harm to the environment.

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which toxin is both a biological and a chemical weapon, is more than 1,000 times as poisonous as cyanide and, in its purest form, can kill an adult in an amount no bigger than a grain of table salt?

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The toxin that fits the given description is botulinum toxin, which serves as both a biological and a chemical weapon. It is over 1,000 times more poisonous than cyanide and can kill an adult.

Botulinum toxin is produced by the bacterium Clostridium botulinum and is considered one of the most potent toxins known to humans. It is classified as both a biological weapon due to its natural occurrence in nature and a chemical weapon due to its potential use as a weaponized substance. The toxin acts by blocking the release of acetylcholine, a neurotransmitter, which leads to paralysis and ultimately death if left untreated.

In its purest form, botulinum toxin can be lethal in minute quantities, with an estimated LD50 (lethal dose for 50% of the population) of just a few nanograms per kilogram of body weight. It is significantly more toxic than cyanide, making it an extremely dangerous substance. Due to its potency, strict controls are in place to regulate its production and handling.

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What are the three plate boundaries and how do they interact?

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Divergent, convergent, and transform borders are the three plate boundaries.

Thus, tectonic plates migrate apart along divergent boundaries, generating new crust as a result of volcanic activity. Depending on the kind of collision (oceanic-oceanic, oceanic-continental, or continental-continental), convergence barriers arise when plates meet, resulting in the construction of mountains, volcanic arcs, or trenches.

Earthquakes are caused by plate boundaries that entail horizontal plate sliding past one another. Divergent barriers produce new crust, convergent boundaries demolish crust, and transform borders redistribute crustal material. These boundaries interact in different ways. Geological structures including mountains, rift valleys, and oceanic trenches are formed as a result of interactions between these boundaries.

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Let's say it starts raining, this increases the relative humidity surrounding the leaves and thus ____________ the water potential of the surrounding air. At what relative humidity will the transpiration pull stop? Why?

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When it starts raining, the relative humidity surrounding the leaves increases, which results in a decrease in the water potential of the surrounding air.

This decrease in water potential gradient causes the water potential inside the plant to become more negative than the surrounding air.

The water potential difference results in a driving force for water movement from the soil through the plant and out through the stomata.

As the relative humidity surrounding the leaves approaches 100%, the water potential gradient between the plant and the surrounding air decreases, which causes a decrease in the rate of transpiration.

When the relative humidity reaches 100%, the water potential of the surrounding air becomes equal to the water potential inside the plant. At this point, the transpiration pull stops as there is no longer a driving force for water movement.

In conclusion, an increase in relative humidity surrounding the leaves causes a decrease in the water potential gradient between the plant and the surrounding air, which reduces the driving force for water movement.

When the relative humidity reaches 100%, the water potential inside the plant becomes equal to the water potential of the surrounding air, and the transpiration pull stops.

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The Trp operon in Escherichia coli encodes the components necessary for tryptophan biosynthesis. In the presence of the amino acid in a bacterium:
a) the tryptophan operator is bound to the tryptophan repressor.
b) the tryptophan repressor is bound to bacterial RNA polymerase.
c) the expression of the tryptophan repressor is shut off.
d) the operon genes are expressed.
e) All of the above.

Answers

In the presence of the amino acid in a bacterium, the correct choice is (a) the tryptophan operator is bound to the tryptophan repressor.

Correct option is, E) All of the above.

The Trp operon in Escherichia coli encodes the components necessary for tryptophan biosynthesis. In the presence of tryptophan, the tryptophan operator is bound to the tryptophan repressor, preventing the binding of RNA polymerase and thus shutting off expression of the operon genes. Additionally, the presence of tryptophan reduces the expression of the tryptophan repressor itself. Therefore, all of the given options are correct and contribute to the regulation of the Trp operon in the presence of tryptophan.

Escherichia coli functions to regulate the production of tryptophan through a feedback mechanism. When there is sufficient tryptophan present in the bacterium, the tryptophan repressor protein binds to the tryptophan operator, preventing transcription of the operon genes, and thus inhibiting tryptophan biosynthesis. This mechanism helps the bacterium save energy and resources by not producing excess tryptophan.

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how would you prepare 3−phenyl−1−propanamine (c6h5ch2ch2ch2nh2) from c6h5ch2ch2cho?

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To prepare 3-phenyl-1-propanamine (C6H5CH2CH2CH2NH2) from C6H5CH2CH2CHO, a two-step process involving reduction and reductive amination is required.

The synthesis of 3-phenyl-1-propanamine from C6H5CH2CH2CHO involves two steps: reduction and reductive amination. In the first step, C6H5CH2CH2CHO (benzyl ethyl ketone) is reduced to C6H5CH2CH2CH2OH (benzyl alcohol). This can be achieved by using a reducing agent such as sodium borohydride (NaBH4) or lithium aluminum hydride (LiAlH4) in a suitable solvent. In the second step, reductive amination is carried out to convert benzyl alcohol into 3-phenyl-1-propanamine. Reductive amination involves the reaction of an amine with an aldehyde or ketone in the presence of a reducing agent. In this case, benzyl alcohol reacts with ammonia (NH3) or an amine (e.g., methylamine or ethylamine) and a reducing agent such as sodium cyanoborohydride (NaBH3CN) or sodium triacetoxyborohydride (NaBH(OAc)3) to form the desired product, 3-phenyl-1-propanamine. Overall, the preparation of 3-phenyl-1-propanamine involves the reduction of benzyl ethyl ketone to benzyl alcohol, followed by reductive amination of benzyl alcohol with ammonia or an amine to obtain the final product.

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difference between the digestive system of amoeba and digestive system of ruminants

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The digestive system of amoeba and ruminants are very different from each other. Amoeba is a unicellular organism that has a simple digestive system, while ruminants are multicellular organisms that have a complex digestive system.

The digestive system of amoeba is intracellular, which means that digestion occurs inside the cell. Amoeba engulf food particles through a process called phagocytosis, in which the cell membrane surrounds and engulfs the food particle, forming a food vacuole. The food vacuole then fuses with lysosomes, which contain digestive enzymes that break down the food particle. The nutrients released by digestion are then absorbed into the cytoplasm of the cell.

In contrast, the digestive system of ruminants is extracellular, which means that digestion occurs outside the cell in a specialized digestive tract. Ruminants have a four-chambered stomach, which allows them to digest plant material that is difficult to break down. The first chamber, the rumen, contains bacteria and other microorganisms that break down the cellulose in plant material. The partially digested food then moves to the reticulum, omasum, and finally the abomasum, where digestive enzymes break down the remaining nutrients. The nutrients are then absorbed into the bloodstream and transported to the rest of the body.

Overall, the digestive system of amoeba is simple and intracellular, while the digestive system of ruminants is complex and extracellular. Ruminantshave evolved a specialized digestive system over time to help them digest tough plant material, while amoeba have a simple digestive system that allows them to absorb nutrients directly into their cells.

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The digestive system of amoeba and ruminants are very different from each other. Amoeba is a unicellular organism that has a simple digestive system, while ruminants are multicellular organisms that have a complex digestive system.
The digestive system of amoeba is intracellular, which means that digestion occurs inside the cell. Amoeba engulf food particles through a process called phagocytosis, in which the cell membrane surrounds and engulfs the food particle, forming a food vacuole. The food vacuole then fuses with lysosomes, which contain digestive enzymes that break down the food particle. The nutrients released by digestion are then absorbed into the cytoplasm of the cell.
In contrast, the digestive system of ruminants is extracellular, which means that digestion occurs outside the cell in a specialized digestive tract. Ruminants have a four-chambered stomach, which allows them to digest plant material that is difficult to break down. The first chamber, the rumen, contains bacteria and other microorganisms that break down the cellulose in plant material. The partially digested food then moves to the reticulum, omasum, and finally the abomasum, where digestive enzymes break down the remaining nutrients. The nutrients are then absorbed into the bloodstream and transported to the rest of the body.
Overall, the digestive system of amoeba is simple and intracellular, while the digestive system of ruminants is complex and extracellular. Ruminantshave evolved a specialized digestive system over time to help them digest tough plant material, while amoeba have a simple digestive system that allows them to absorb nutrients directly into their cells.

mechanoreceptors specifically designed to monitor muscle length are termed

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The mechanoreceptors specifically designed to monitor muscle length are called muscle spindle receptors.

These receptors are located within the muscle and are responsible for providing information to the nervous system about the muscle's length and rate of change in length during movement. This information is important for the body to maintain proper muscle tone and coordination in case of mechanoreceptors.

Sensory receptors known as mechanoreceptors are designed specifically to pick up on mechanical stimuli like pressure, vibration, stretch, and touch. They are present all over the body and are essential for our capacity to recognise and react to physical stimuli in our surroundings. Skin, muscles, joints, internal organs, and other tissues and organs all include mechanoreceptors. These receptors are triggered by mechanical forces, which then cause electrical impulses to be sent to the central nervous system. This allows humans to feel sensations like pressure, texture, and movement.

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the transcription factor hox is a primary controller of genes needed for

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The transcription factor hox is a primary controller of genes needed for the proper development and differentiation of cells and tissues along the anterior-posterior axis of an organism.

Hox genes are critical for the regulation of embryonic development and play a vital role in determining the identity and function of different body parts.

They are responsible for specifying the positional identity of cells, controlling the formation of various organs and structures, and ensuring that cells differentiate into the appropriate cell type at the right time and in the correct location.

Without the action of hox genes and their associated transcription factors, development would not proceed in an orderly and coordinated manner, and the resulting organism would likely have severe developmental abnormalities and defects.

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a strand of dna serves as a template (model) for the synthesis of ____.

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A strand of DNA serves as a template (model) for the synthesis of RNA strand.

The enzyme RNA polymerase (green) uses DNA template during transcription to create a pre-mRNA transcript (pink). The original gene's pre-mRNA gets transformed into a mature mRNA molecule that can be translated to create the protein molecule (polypeptide) that was originally encoded.

The creation of an RNA molecule uses one of the two DNA double helix strands as a template. The complementary base pairing between incoming nucleotides and the DNA template, just like in DNA replication, determines the nucleotide sequence of the RNA chain.

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according to lamarck, if someone dyed their hair dark brown to make their blonde less visible at night, what hair color would have passed on to their offspring?

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According to Lamarck's theory of inheritance of acquired characteristics, any physical changes an organism makes during its lifetime can be passed on to its offspring.

In this scenario, if someone dyed their hair dark brown to make their blonde less visible at night and had children after the change, Lamarck would suggest that their offspring would inherit the dark brown hair color.
However, it's important to note that Lamarck's theory has been largely discredited by modern genetics, which has shown that traits are determined by genes passed down from parents, not by acquired characteristics. So while the person's offspring may inherit genes for hair color from both parents, the decision to dye their hair brown would not have any direct effect on their offspring's hair color.In summary, according to Lamarck's theory, the offspring of someone who dyed their hair dark brown to make their blonde less visible at night would inherit the dark brown hair color. However, modern genetics has discredited this theory, and hair color is determined by genes, not acquired characteristics.

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Now think about how the same principles could apply to the activation of metabolic pathways. Which of the following conditions is most likely to lead to the activation of pyruvate dehydrogenase? O High concentrations of acetyl-Co O High concentrations of NADH O High concentrations of NAD O High concentrations of CO2

Answers

In terms of metabolic pathway activation, the following condition most likely to lead to the activation of pyruvate dehydrogenase is b. high concentrations of NAD.

Pyruvate dehydrogenase is an enzyme complex that plays a critical role in cellular respiration, as it catalyzes the conversion of pyruvate into acetyl-CoA, which then enters the citric acid cycle. The enzyme's activity is regulated by the concentrations of various metabolites, including NAD and NADH. High concentrations of NAD indicate that the cell has a high demand for energy, as NAD is a crucial cofactor for energy production through the citric acid cycle and oxidative phosphorylation.

The increased availability of NAD promotes the activation of pyruvate dehydrogenase, thereby enhancing the conversion of pyruvate to acetyl-CoA and stimulating energy production. In contrast, high concentrations of NADH, acetyl-CoA, and CO2 typically inhibit pyruvate dehydrogenase, as they indicate that the cell's energy requirements are being met and that there is no need for further activation of this metabolic pathway.

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Part A Using these three resources, what experiments would you perform to test the following issues? Sort each method of testing into the appropriate bin. Reset! Help transterring the cloned normal gene into the cells by transforrmation or transfection immunoassay and screening a genomic lbrany using labeled probes mmunoassay only Whether osteosarcoma cels carry tw RBWhether osteosarcoma cells produceIf the addition of a normal RB1 gene wil any pRB protein f the addtion of a normal RB1 gene will change the cancer-causing potential of osteosarcoma cells mutations

Answers

To transfer the cloned normal RB1 gene into osteosarcoma cells, one can perform either transformation or transfection, which falls under the transformation/transfection bin.

To test whether osteosarcoma cells carry two RB1 genes, one can perform an immunoblot analysis, which falls under the immunoassay bin. This analysis involves separating cellular proteins based on size and charge using gel electrophoresis and detecting the presence of the RB1 protein using a specific antibody. If two bands appear, it indicates the presence of both RB1 genes.
To test whether osteosarcoma cells produce pRB protein, one can perform an immunofluorescence assay, which also falls under the immunoassay bin. This assay involves staining the cells with a specific antibody against pRB and visualizing the fluorescence signal using a microscope. If a signal is detected, it indicates the production of pRB protein.
To transfer the cloned normal RB1 gene into osteosarcoma cells, one can perform either transformation or transfection, which falls under the transformation/transfection bin. Transformation involves using a non-viral method, such as electroporation, to introduce the gene into the cell, while transfection involves using a viral vector to deliver the gene. The success of gene transfer can be confirmed using PCR or sequencing. To determine if the addition of a normal RB1 gene will change the cancer-causing potential of osteosarcoma cells mutations, one can perform a genomic library screening using labeled probes, which falls under the genomic library screening bin. This involves screening a library of genomic DNA from the osteosarcoma cells with a labeled probe specific to the RB1 gene. The presence or absence of mutations in the RB1 gene can be detected based on the hybridization signal.

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archaeocyathid, bryozoan, and stromatoporoid fossils indicate which type of environment

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Archaeocyathid, bryozoan, and stromatoporoid fossils indicate a shallow marine environment.

These organisms are all filter feeders that live in the water column or on the seafloor. They are found in a variety of marine environments, but they are most common in shallow, tropical waters.

Archaeocyathids are extinct animals that are related to jellyfish. They had a cup-shaped body with a porous wall. Bryozoans are small, colonial animals that are related to moss.

They have a hard outer skeleton and can form colonies that can be up to several meters in diameter. Stromatoporoids are extinct animals that are related to corals. They had a calcareous skeleton and could form reefs that were up to several meters thick.

The presence of these fossils in a rock formation indicates that the rock was formed in a shallow marine environment. This is because these organisms are all adapted to living in shallow water. They need access to sunlight in order to photosynthesize, and they need to be able to filter food from the water column.

Shallow marine environments are typically warm and clear. They are also nutrient-rich, which is why these organisms are so abundant in these environments. Shallow marine environments are also home to a variety of other organisms, including fish, crustaceans, and mollusks.

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Enhancers bind to DNA upstream of the promoter region and allow ____ to begin to catalyze mRNA synthesis.

Answers

Answer: RNA polymerase - II

Explanation: Many eukaryotic genes possess enhancer sequences, which can be found at considerable…

Enhancers are DNA sequences that bind to transcription factors and other proteins to increase the activity of RNA polymerase in the promoter region.

This allows for the synthesis of mRNA molecules from the DNA template. The process of transcription requires the use of a variety of proteins and enzymes to accurately and efficiently transcribe the genetic information in the DNA.

The binding of enhancers to the DNA upstream of the promoter region is a critical step in this process, as it helps to regulate gene expression and control the synthesis of specific proteins.

Overall, enhancers are important components of the complex regulatory network that controls gene expression in all living organisms.

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What is the main purpose of genome-wide association studies (GWAS)?
1. GWAS involve scanning the genomes of thousands of unrelated individuals with a particular skin colour and compare to other individuals.
2. GWAS involve scanning the genomes of thousands of unrelated individuals with a particular disease and compare with individuals who do not have the disease.
3. GWAS involve scanning the genomes of thousands of unrelated individuals with a particular mutation and compare with individuals who do not have the mutation.

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GWAS involve scanning the genomes of thousands of unrelated individuals with a particular disease and compare with individuals who do not have the disease.

The main purpose of GWAS is to identify genetic variations associated with the risk of developing a particular disease or condition. By comparing the genomes of individuals with a disease to those without the disease, researchers can identify genetic markers that are more common in the affected individuals, potentially leading to a better understanding of the genetic basis of the disease and the development of new treatments.

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Other Questions
Create union integer with members char c, short s, int i and long b. write a program that inputs values of type char, short, int and long and stores the values in union variables of type union integer. each union variable should be printed as a char, a short, an int and a long. do the values always print correctly?#include //union integer definitionunion integer{char c;short s;int i;long b;};//main functionint main(void){// define union aunion integer a;// prompt user to enter character from input deviceprintf("enter a character: ");// read character and put in unionscanf("%c", &a.c);//print the values of unionprintf("%c printed as a character: %c\n", a.c, a.c);printf("%c printed as a short: %hd\n", a.c, a.s);printf("%c printed as an integer: %d\n", a.c, a.i);printf("%c printed as a long: %ld\n", a.c, a.b);//prompt user to enter a short valueprintf("\nenter a short: ");// read short and put in unionscanf("%hd", &a.s);//print eh values of unionprintf("%c printed as a character: %c\n", a.s, a.c);printf("%c printed as a short: %hd\n", a.s, a.s);printf("%c printed as an integer: %d\n", a.s, a.i);printf("%c printed as a long: %ld\n", a.s, a.b);//prompt user to enter an integer valueprintf("\nenter an integer: ");// read integer and put in unionscanf("%d", &a.i);//print eh values of unionprintf("%c printed as a character: %c\n", a.i, a.c);printf("%c printed as a short: %hd\n", a.i, a.s);printf("%c printed as an integer: %d\n", a.i, a.i);printf("%c printed as a long: %ld\n", a.i, a.b);//prompt user to enter an long valueprintf("\nenter a long: ");// read long and put in unionscanf("%ld", &a.b);//print eh values of unionprintf("%c printed as a character: %c\n", a.b, a.c);printf("%c printed as a short: %hd\n", a.b, a.s);printf("%c printed as an integer: %d\n", a.b, a.i);printf("%c printed as a long: %ld\n", a.b, a.b);return 0;}// end main In a system of equations, when solving using elimination, the variable disappears with a false statement. 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