Dietary fat can cause the release of all gastrointestinal hormones EXCEPT one. Which one is the EXCEPTION?
A) Cholecystokinin
B) Gastrin
C) Glucose-dependent insulinotropic peptide
D) Motilin
E) Secretin

Seeds have contributed to the success of angiosperms by nourishing the embryo to live on for a while. This is because the seed contains a food source for the developing plant, which allows it to survive until it can establish roots and begin to photosynthesize.

Additionally, seeds allow angiosperms to reproduce and spread to new locations, which also contributes to their success.

Overall, the development of seeds has been a key factor in the success of angiosperms, and has allowed them to become one of the most dominant groups of plants on Earth.

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Answer: B

Explanation:

Klinefeller syndrome is where males have an extra X chromosome. The x chromosome is a sex chromosome.

Natural selection increases the number of different types of alleles within a population.

The given statement is False.

Natural selection does not increase the number of different types of alleles within a population. Instead, it increases the frequency of certain alleles that are advantageous for survival and reproduction in a particular environment. These advantageous alleles become more common in the population over time, while less advantageous alleles become less common. This process is known as adaptive evolution and can lead to changes in the genetic makeup of a population over time. However, it does not increase the number of different types of alleles within a population.

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The given statement "During this century, Cognitive Psychology was defined as a broad field concerned with memory, perception, attention, pattern, recognition, or any activity that involves the human mind." is true because these are fundamental aspects of human cognition that play a role in almost every aspect of our lives.

Cognitive Psychology is a branch of psychology that focuses on the study of mental processes such as memory, perception, attention, and pattern recognition. It is concerned with how people acquire, process, store, and use information. Cognitive psychologists are interested in understanding how people think, remember, and learn, as well as how they make decisions and solve problems.

This field is also concerned with the neural processes that underlie these mental processes. Cognitive Psychology has become a broad field that encompasses many different areas of research, including cognitive neuroscience, cognitive development, and cognitive aging.

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Answer:63.2 inches, 160.5 cm, 5.26 feet

Answer: around 63 to 64 inches or 5 feet 4 inches

Explanation:

Refer to pic..........

1. Several factors limiting the spread of nonvascular plants such as liverworts, hornworts, and mosses include their reliance on moisture for spore dispersal.

2. The structure and function of the embryo of a spermatophyte, or seed-bearing plant, is composed of the cotyledons, the radicle, and the plumule.

1. their inability to compete with vascular plants, and their lack of a vascular system. Without a vascular system, these plants are unable to transport water and nutrients effectively, and are therefore restricted in their growth.

2. The cotyledons are the two seed leaves and are responsible for the initial nourishment of the embryo. The radicle is the first root of the embryo and is responsible for anchoring the embryo in the soil. The plumule is the shoot of the embryo and is responsible for the upward growth of the seedling.

These structures give the spermatophyte the advantage of being able to develop in more hostile environments than bryophytes, since the embryo is protected by the seed coat, and the structures provide the seedling with the initial resources it needs to grow.

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B.selective. One or more microbe species can be chosen using a selective medium. They will be the only bacteria that can grow on or in the medium because all others will be prevented from doing so.

There are numerous methods for obtaining selectivity. It is easy to choose for organisms that can use the sugar, for example, by making a certain sugar the sole source of carbon in the medium. A certain type of microorganism can be selectively blocked by the use of dyes, antibiotics, salts, or other inhibitors that affect the enzyme systems or metabolism of the organisms.

Differentiating between groups of species or closely related organisms is done using differential media. All three sectors medical, food, and dairy use a variety of selection and differential media.

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To make 10 uL of a 0.3 ng/uL solution for adding to an Identifiler reaction, we need to calculate the amount of DNA sample that is needed. To do this, we can use the following formula:

Amount of DNA sample = Volume of solution x Concentration of sample

Therefore, we can calculate the amount of DNA sample needed by multiplying 10 uL (volume of solution) by 0.3 ng/uL (concentration of sample). This gives us 3 ng of DNA sample which needs to be added to 10 uL of solution.

To get this amount of DNA sample from the original 27.8 ng/uL solution, we need to calculate the volume of solution we need using the following formula:

Volume of solution = Amount of DNA sample / Concentration of sample

Therefore, we can calculate the volume of solution required by dividing 3 ng (amount of DNA sample) by 27.8 ng/uL (concentration of sample). This gives us 0.108 uL of the 27.8 ng/uL solution.

Finally, we can mix 0.108 uL of the 27.8 ng/uL solution with 9.892 uL of buffer solution to make 10 uL of a 0.3 ng/uL solution for adding to an Identifiler reaction.

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The milk sample has a total coliform count of 7.2 x 10^8 CFU/g, which is much higher than the acceptable limit of 10^4 CFU/g. Therefore, the milk sample is not safe to consume.

Based on the provided data in the question, it can be concluded whether the milk sample is good for consumption or not. The total coliform count limit for dairy products is 10^4 CFU/g. If the total coliform count is above this limit, the dairy product is considered unacceptable for consumption.The number of colonies obtained from different dilutions of the milk sample is provided in the table below:

Table: Colonies obtained from different dilutions of the milk sampleDilution 1: 270 CFU/mlDilution 2: 1200 CFU/mlDilution 3: 10,800 CFU/mlDilution 4: 72,000 CFU/ml. The dilution factor is the amount of the original milk sample that is diluted with sterile water. It is denoted as DF. To determine the total coliform count of the original milk sample, the number of colonies obtained from the highest dilution is multiplied by the dilution factor (DF).For instance, the total coliform count for dilution 4 would be:

Total coliform count for dilution 4 = Number of colonies x DFTotal coliform count for dilution 4 = 72,000 x 10^4

Total coliform count for dilution 4 = 7.2 x 10^8 CFU/g

Since the total coliform count of the milk sample is higher than the acceptable limit, the milk sample is not suitable for consumption.

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To measure the metabolic rate of a young growing cow using the material-balance method, you can take account of the cow's growth by measuring the cow's feed intake and growth rate over time.

This data can then be used to calculate the energy balance, or the difference between the energy intake and the energy output, which will give an accurate measure of the metabolic rate.

To use the material-balance method, you will need to measure the animal's body weight, feed intake, and heat production at regular intervals. You can then use this data to calculate the energy balance. For example, if the energy output exceeds the energy intake, the metabolic rate is too high. Conversely, if the energy intake exceeds the energy output, the metabolic rate is too low.

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The dicot leaf is a type of plant leaf that has a characteristic structure composed of several distinct parts like:

Here is a brief description of each of these parts.

The complete question is to label the model of the leaf, so you can use the image below to complete your own.

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Answer:

B. It is neither an acid nor a base because it is neutral

"During an action potential, as K+ (potassium ions) diffuse out of the cell, the cell becomes more depolarized. When Na+ (sodium ions) diffuse into the cell, the cell becomes more polarized. The Na+ channels open when the cell membrane reaches threshold level as a result of a stimulus, and these channels close when the cell reaches +30 mV."

During an action potential, the cell's membrane potential changes due to the movement of charged ions. When a stimulus reaches a certain threshold, Na+ channels open, allowing Na+ to rush into the cell and depolarize it. As the membrane potential becomes more positive, K+ channels open, allowing K+ to leave the cell and further depolarize it.

Once the membrane potential reaches +30 mV, the Na+ channels close, and the K+ channels remain open, allowing K+ to continue leaving the cell and repolarizing it back to its resting state. The movement of ions during an action potential is a critical process for nerve impulses to transmit information throughout the body.

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The group of organelles and cellular structures that work together to transport peptides/proteins out of the cell are collectively called the secretory pathway. The secretory pathway is composed of several organelles and cellular structures, including the endoplasmic reticulum (ER), the Golgi apparatus, and vesicles.

The secretory pathway functions to transport proteins from the site of synthesis in the ER to the plasma membrane, where they can be secreted out of the cell. The process begins with the synthesis of proteins on the rough ER. The proteins are then transported to the Golgi apparatus, where they undergo further modifications, such as glycosylation. Finally, the proteins are packaged into vesicles, which transport them to the plasma membrane for secretion.
In summary, the secretory pathway is a group of organelles and cellular structures that work together to transport peptides/proteins out of the cell. It is composed of the endoplasmic reticulum, the Golgi apparatus, and vesicles, and functions to transport proteins from the site of synthesis to the plasma membrane for secretion.

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The phenotype of the offspring would be green and round, green and wrinkled, yellow and around, and yellow and wrinkled. The Punnett square would look like this:

       |   GR   |   Gr   |  gR   |  gr
     --|   ----   |  ----   |  ----    |  ---
  GR| GGRr | GGrr | GgRr | Ggrr
  Gr | GGRr | GGrr | GgRr | Ggrr
  gR| GgRr  | Ggrr  | ggRr | ggrr
  gr | GgRr  | Ggrr  | ggRr | ggrr

To complete the Punnett square and determine the genotypes and phenotypes of the offspring, we first need to identify the parental genotypes. The first parent is heterozygous green (Gg) and homozygous round (RR), while the second parent is heterozygous for both traits (GgRr).

Based on the Punnett square of this case, possible genotypes of the offspring are GGRr, GGrr, GgRr, Ggrr, ggRr, and ggrr. These genotypes, when translated into phenotypes, would look like as follows:

So, the offspring will have a 3:1 ratio of green to yellow peas and a 3:1 ratio of round to wrinkled peas.

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The source of nucleic acid for cloning c4 will depend on the organism of interest and the specific gene sequence being targeted.

If the gene sequence is known, a genomic DNA or cDNA library could be screened to identify a suitable template. Alternatively, PCR amplification of the gene sequence from genomic DNA or cDNA can be performed.

The major steps necessary to prepare the template for PCR include DNA extraction, quantification, and purification. DNA extraction can be performed using a variety of methods, such as organic extraction or commercial DNA extraction kits.

The extracted DNA should be quantified to ensure there is enough template for PCR. DNA purification can be achieved using commercially available kits or by precipitation with ethanol. Finally, the purified DNA can be used as a template for PCR amplification.

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There are four main functional groups: alcohols, amines, acids, and aldehydes. Each of these groups has distinct properties.

1. Hydroxyl group (-OH): This group is polar and can form hydrogen bonds, making compounds with this group soluble in water.

Examples of chemicals with this group are ethanol (CH3CH2OH) and glycerol (CH2OHCHOHCH2OH).

2. Carbonyl group (>C=O): This group is also polar and can form hydrogen bonds. It is found in aldehydes and ketones.

Examples of chemicals with this group are formaldehyde (HCHO) and acetone (CH3COCH3).

3. Carboxyl group (-COOH): This group is acidic and can donate a proton (H+) to a solution.

Examples of chemicals with this group are acetic acid (CH3COOH) and amino acids (NH2CHRCOOH).

4. Amino group (-NH2): This group is basic and can accept a proton (H+) from a solution.

Examples of chemicals with this group are ammonia (NH3) and amino acids (NH2CHRCOOH).

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By employing sustainable forestry management, the Onceler could continue to produce forest products while also protecting the health and biodiversity of the forest ecosystem,

What is Biodivesity?

Biodiversity, short for "biological diversity," refers to the variety of living organisms on Earth, including the genetic diversity within and between species, the variety of species themselves, and the diversity of ecosystems in which they live. Biodiversity is important for the functioning of ecosystems and the services they provide, such as air and water purification, nutrient cycling, pollination, and climate regulation.

One forestry strategy that could meet both the Onceler's economic need for forest production and the Lorax's need for forest health is sustainable forestry management. This strategy involves harvesting trees in a way that maintains the health and productivity of the forest over the long term.

To implement sustainable forestry management, the Onceler could use practices such as selective logging, which involves removing only the mature trees that are ready for harvest, leaving younger trees to continue growing. The Onceler could also plant new trees to replace those that are harvested and use techniques such as crop rotation to ensure the soil remains healthy and productive.

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The C:N ratio is a measure of the relative amount of carbon and nitrogen in a given sample.

A C:N ratio, or carbon-to-nitrogen ratio, is the ratio of the mass of carbon to the mass of nitrogen in a substance. It is a key indicator of the nutrient content of organic matter, and is used in soil science, ecology, and agriculture to determine the potential of organic matter to release nutrients and improve soil health.

Molecular C:N ratios are calculated by dividing the number of carbon atoms in a molecule by the number of nitrogen atoms. For example, the molecular C:N ratio of glucose (C6H12O6) is 6:0, or infinity, because there are no nitrogen atoms in the molecule.

Atomic C:N ratios are calculated by dividing the mass of carbon in a sample by the mass of nitrogen. This is typically done using a mass spectrometer, which measures the masses of individual atoms in a sample. The atomic C:N ratio is a more accurate measure of the nutrient content of organic matter, because it takes into account the different masses of carbon and nitrogen atoms.

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Tissue culture is a method of cell culture used to study the growth and behavior of cells. It has a variety of applications in medicine, biotechnology, and research. The six main applications are:

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Answer:

A. Urban areas like downtown

Explanation:

Structures such as buildings, roads, and other infrastructure absorb and  re-emit the sun's heat more than natural landscapes such as forests and water bodies. Urban areas, where these structures are highly concentrated and greenery is limited, become “islands” of higher temperatures relative to outlying areas.

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The informational genetic sequence of Rous sarcoma virus (ASV) and Avian leukosis virus (ALV) differs in the presence of an additional gene, called the src gene, in the Rous sarcoma virus.

This src gene makes a protein called Src kinase, which is a very important part of the process by which Rous sarcoma virus changes the way cells work.

The Avian leukosis virus, on the other hand, doesn't have the src gene, so it doesn't make the Src kinase protein.

As a result, the mechanism of cellular transformation induced by Avian leukosis virus is different from that of Rous sarcoma virus.

The Avian leukosis virus induces cellular transformation through the activation of cellular oncogenes, whereas the Rous sarcoma virus induces cellular transformation through the activity of the Src kinase protein produced by the src gene.

In short, Rous sarcoma virus and Avian leukosis virus have different informational genetic sequences because Rous sarcoma virus has the src gene and Avian leukosis virus does not.

Because of this difference, each virus has a different way of changing cells. The Rous sarcoma virus uses the Src kinase protein, while the Avian leukosis virus turns on cellular oncogenes.

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The enzyme used on Protein Example #2 to make the C fragments is trypsin.

Trypsin is a serine protease that cleaves proteins at the carboxyl side of lysine and arginine residues. It is an enzyme in the first section of the small intestine that starts the digestion of protein molecules by cutting long chains of amino acids into smaller pieces.

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The CFU/ml of each kitchen sponge is listed below. Data are grouped by the dilution factor.

The CFU/ml for the factor of dilution 1:1000 is:

A = 3 890 000 CFU/ml
B = 5110000 CFU/ml
C = 9080000 CFU/ml
D = 4120000 CFU/ml
F =  5750000 CFU/ml
G = 6020000 CFU/ml
H = 4250000 CFU/ml
I =  3760000 CFU/ml
J = 5230000 CFU/ml
K = 6050000 CFU/ml

The CFU/ml for the factor of dilution 1:10000 is:

A = 9 800 000 CFU/ml
B = 5300000 CFU/ml
C = 29400000 CFU/ml
D = 11800000 CFU/ml
F = 26300000 CFU/ml
G = 20900000 CFU/ml
H =  22500000 CFU/ml
I = 15400000 CFU/ml
J = 27400000 CFU/ml
K = 24200000 CFU/ml

The CFU/ml for the factor of dilution 1:100000 is:

A = 2000000 CFU/ml
B =  26000000 CFU/ml
C = 29000000 CFU/ml
D = 25000000 CFU/ml
F = 23000000 CFU/ml
G = 21000000 CFU/ml
H =  5000000 CFU/ml
I = 11000000 CFU/ml
J = 18000000 CFU/ml
K = 22000000 CFU/ml

It is necessary to do a dilution because sometimes, the initial concentration of a sample is too high to be accurately measured or used in an experiment.

To calculate CFU/ml of each colony number, we can use the formula:

CFU/ml = (number of colonies x dilution factor) / volume plated

In this case, the volume plated is 0.1 ml and the dilution factor is 1000. Therefore, we can calculate the CFU/ml for each colony as follows:

Plate 4
A = (389 x 1000) / 0.1 = 3 890 000 CFU/ml
B = (511 x 1000) / 0.1 = 5110000 CFU/ml
C = (908 x 1000) / 0.1 = 9080000 CFU/ml
D = (412 x 1000) / 0.1 = 4120000 CFU/ml
F = (575 x 1000) / 0.1 = 5750000 CFU/ml
G = (602 x 1000) / 0.1 = 6020000 CFU/ml
H = (425 x 1000) / 0.1 = 4250000 CFU/ml
I = (376 x 1000) / 0.1 = 3760000 CFU/ml
J = (523 x 1000) / 0.1 = 5230000 CFU/ml
K = (605 x 1000) / 0.1 = 6050000 CFU/ml

For the second set of data, the volume plated is 0.1 ml and the dilution factor is 10000. We can do the same calculations but with a different dilution factor:

Plate 5
A = (98 x 10000) / 0.1 = 9 800 000 CFU/ml
B = (53 x 10000) / 0.1 = 5300000 CFU/ml
C = (294 x 10000) / 0.1 = 29400000 CFU/ml
D = (118 x 10000) / 0.1 = 11800000 CFU/ml
F = (263 x 10000) / 0.1 = 26300000 CFU/ml
G = (209 x 10000) / 0.1 = 20900000 CFU/ml
H = (225 x 10000) / 0.1 = 22500000 CFU/ml
I = (154 x 10000) / 0.1 = 15400000 CFU/ml
J = (274 x 10000) / 0.1 = 27400000 CFU/ml
K = (242 x 10000) / 0.1 = 24200000 CFU/ml

For the third set of data, we can do the same calculations but use the dilution factor of 100 000

Plate 6
A = (2 x 100000) / 0.1 = 2000000 CFU/ml
B = (26 x 100000) / 0.1 = 26000000 CFU/ml
C = (29 x 100000) / 0.1 = 29000000 CFU/ml
D = (25 x 100000) / 0.1 = 25000000 CFU/ml
F = (23 x 100000) / 0.1 = 23000000 CFU/ml
G = (21 x 100000) / 0.1 = 21000000 CFU/ml
H = (5 x 100000) / 0.1 = 5000000 CFU/ml
I = (11 x 100000) / 0.1 = 11000000 CFU/ml
J = (18 x 100000) / 0.1 = 18000000 CFU/ml
K = (22 x 100000) / 0.1 = 22000000 CFU/ml

Rember that a dilution series allows the concentration to be decreased incrementally to a range that can be accurately measured or used in an experiment.

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(a)There is a 1/1024 chance of the offspring having the genotype AABBCCDDEEFF.; (b)There is a 1/65536 chance of the offspring having the genotype AaBbCcddEEFf.

Scoring of the type of variant present at given location in the genome is called genotype.

Parent 1 gametes:

AaBbCCDdEEff: ABCEf, ABCEf, abCEf, abCEf, ABcEf, ABcEf, abcEf, abcEf, ABCEf, ABCEf, abCEf, abCEf, ABcEf, ABcEf, abcEf, abcEf

Parent 2 gametes:

AaBbCcddEeFF: ABCde, ABCde, ABcde, ABcde, AbCde, AbCde, Abcde, Abcde, ABCde, ABCde, ABcde, ABcde, AbCde, AbCde, Abcde, Abcde

a. AABBCCDDEEFF:

(1/2)⁵ x (1/2)⁵ = 1/1024

This means that there is a 1/1024 chance of the offspring having the genotype AABBCCDDEEFF.

b. AaBbCcddEEFf:

For the AaBbCc part of the genotype, there are 4 possible alleles for each parent, so there are 16 possible combinations. The probability of each parent passing on a specific combination of alleles is 1/16, so the probability of both parents passing on the same combination of alleles is (1/16)²= 1/256.

For dd, each parent has a 1/4 chance of passing on recessive allele, so the probability of both parents passing on the recessive allele is (1/4)² = 1/16.

For EE, each parent has a 1/2 chance of passing on dominant allele, so probability of both parents passing on the dominant allele is (1/2)² = 1/4.

For Ff , each parent has a 1/2 chance of passing on either allele, so probability of both parents passing on same allele is (1/2)² = 1/4.

(1/256) x (1/16) x (1/4) x (1/4) = 1/65536

This means that there is a 1/65536 chance of the offspring having the genotype AaBbCcddEEFf.

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The suggested dose of vancomycin hydrochloride for a 5-year-old patient weighing 44 lb with antibiotic-associated colitis is 4 mg/kg three times daily for 7 days. Over the total 7 days, the patient will be given 1.92 g (4 mg/kg x 44 lb x 3 doses x 7 days = 1.92 g). Hence, the correct option is (D).

To find the total amount of vancomycin hydrochloride that will be given to the patient over the total 7 days, we need to first calculate the patient's weight in kilograms and then multiply it by the suggested dose and the number of times the dose will be given in a day and the number of days the dose will be given.

Weight of the patient in kg = 44 lb / 2.2 = 20 kg

Suggested dose = 4 mg/kg

Number of times the dose will be given in a day = 3

Number of days the dose will be given = 7

Total amount of vancomycin hydrochloride = 20 kg × 4 mg/kg × 3 × 7 = 16800 mg = 19.2 g

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More civil cases are being filed without legal representation.

According to a 2019 report by the National Center for State Courts, an estimated 80% of low-income Americans and 50% of middle-income Americans are unable to afford legal services for civil cases. This suggests that a significant number of people in the U.S. may be filing civil cases without legal representation due to financial constraints.

Additionally, a study conducted by the American Bar Association in 2018 found that nearly two-thirds of civil cases in the U.S. involved at least one pro se litigant, meaning a person who is representing themselves in court without a lawyer. This indicates that there is a notable presence of self-representation in civil cases in the U.S.

Therefore, based on these statistics and trends, it can be tentatively concluded that more civil cases are being filed without legal representation in the U.S. due to financial constraints and the prevalence of self-representation.

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It sounds like you are asking about the field of neuropsychology. Neuropsychology is a branch of psychology that focuses on the relationship between the brain and behavior. It seeks to understand how the brain influences and is influenced by cognitive processes, emotions, and behavior.

One of the main goals of neuropsychology is to find a physical explanation for mental disturbances and diseases of the mind. This is done through the study of brain anatomy, neuroimaging techniques, and neuropsychological assessments.

Neuropsychologists also use their knowledge of the brain and behavior to develop treatments for mental health disorders, such as cognitive-behavioral therapy and medication.

Overall, neuropsychology is an important field that seeks to understand the complex relationship between the brain and behavior in order to improve mental health and well-being.

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Progeny from this cross are test crossed. Lower case is used to designate a recessive allele. The genotype of the katydid used as the tester would be e) F/F • B/B

The given genotypes are:F/F•b/b and f/f•B/B.F1 progeny: In order to determine the F1 progeny, we will cross the above-mentioned genotypes:F/F•b/b × f/f•B/B. This will result in the following possible gametes:F•b and f•BThe above-mentioned gametes will combine to form F1 progeny:F/f•B/b. The genotype of the katydid used as the tester:It can be determined from the F1 progeny by using the test cross method.

For the test cross, we will cross the F1 progeny with the homozygous recessive parent (f/f•b/b).The resulting offspring from the test cross:F/f•b/b × f/f•B/B ⇒ f/f•b/B, f/f•b/b, F/f•b/B, and F/f•B/BThe phenotype of f/f•b/b and F/f•b/b is similar. Hence, we can ignore them. Thus, the only observed genotype of the offspring is F/f•B/B. This genotype can only be possible if the tester's genotype is F/F•B/B.The genotype of the katydid used as the tester is F/F•B/B.

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