Answer:
the volume of a sphere in terms of diameter (d) is, V = (πd3)/6.
Blood type is a characteristic that has multiple alleles. The A and B alleles are
codominant, and they are both dominant over the O allele. A parent with type
O blood and a parent who is heterozygous for type A blood have a child.
What is the probability that their child will have the AO genotype?
OA. 0.00
OB. 0.50
OC. 0.75
OD. 0.25
Answer: B
Explanation:
The probability that their child will have the AO genotype is 50%, since both alleles are codominant and dominant over the O allele.
What is the probability that two blood type O parents will
produce a child with blood type A?
The probability that two blood type O parents will produce a child with blood type A is 0%.
This is because blood type O is recessive, meaning that an individual with blood type O carries two copies of the O allele.
In order for a child to have blood type A, they must inherit at least one copy of the A allele from one of their parents. Since both parents have blood type O, they do not carry the A allele and therefore cannot pass it on to their child.
Therefore, the probability of two blood type O parents producing a child with blood type A is 0%.
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From the book Spark describe the benefits of exercise with regardsto the aging process including neurological benefits
Exercise has numerous benefits with regards to the aging process, including neurological benefits. Some of the key benefits are:
Improved cognitive functionReduced risk of dementiaImproved moodIncreased longevityBetter physical healthWe proceed to describe the various benefits of exercise:
Improved cognitive function: Exercise has been shown to improve cognitive function in older adults, including better memory, attention, and processing speed.Reduced risk of dementia: Regular exercise has been shown to reduce the risk of developing dementia, including Alzheimer's disease.Improved mood: Exercise has been shown to improve mood and reduce symptoms of depression in older adults.Better physical health: Exercise can help older adults maintain their physical health, including reducing the risk of falls and improving cardiovascular health.Increased longevity: Regular exercise has been shown to increase longevity and reduce the risk of premature death in older adults.See more about benefits of exercise at https://brainly.com/question/22099223.
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3 pages on the significance of the proposal of the effects of
smoking cocaine to the lungs with refrences
Smoking cocaine has many damaging effects on the lungs. The chemicals in cocaine can damage the lung's airways and tissue, leading to decreased lung function, inflammation, and bronchial asthma.
Additionally, the smoke from cocaine contains chemicals such as ammonia, benzene, and formaldehyde, which can cause cancer and other lung-related diseases. It is also important to note that smoking cocaine can increase the user's risk of developing pneumonia and pulmonary embolism.
In terms of the significance of this proposal, it is important to consider the potential long-term effects of smoking cocaine. Cocaine can cause permanent damage to the lungs and can even lead to lung cancer.
Additionally, studies have shown that smoking cocaine increases the risk of pulmonary embolism and other dangerous respiratory conditions. Furthermore, cocaine use can lead to a decreased level of oxygen in the lungs, which can lead to a range of other health problems.
References:
1. Jann, M. (2010). The Respiratory Effects of Smoking Cocaine. Substance Abuse Treatment, Prevention, and Policy, 5(1). doi: 10.1186/1747-597X-5-20
2. Ryan, P., Hall, W., & Farrell, M. (2012). Smoking cocaine: a review of its pulmonary toxicity. BMC Pulmonary Medicine, 12(1). doi: 10.1186/1471-2466-12-5
3. Glantz, S.A., and Parmley, W.W. (1991). Passive Smoking: The Science and the Politics. California: University of California Press.
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In which one of the following growth phases is there intense activity preparing for population growth, but no increase in population?
The pre-growth (Lag phase) phase is characterized by intense activity preparing for population growth, but no actual increase in population.
The growth phase in which there is intense activity preparing for population growth, but no increase in population is called the Lag phase. In the lag phase, the cells are adjusting to the new environment, and are not yet dividing at their maximum rate. During this time, the cells are metabolizing and increasing in size, but there is no increase in the number of cells. This phase is followed by the exponential growth phase, in which the population begins to increase rapidly. The lag phase is an important part of the growth cycle, as it allows the cells to prepare for rapid growth and division. Without this phase, the cells may not be able to divide and grow as efficiently, leading to a slower overall growth rate.
for example, bacteria:- The lag phase is when bacteria adjust to the growing environment. During this time, the individual bacteria are still developing and unable to divide. RNA, enzymes, and other compounds are synthesised by bacteria during their lag period of growth. Due to the fact that they do not immediately replicate in a new medium, cells change relatively little during the lag phase. The lag phase, which can last anywhere between an hour and many days, is characterised by minimal to no cell division. The cells are not inactive during this stage.
In conclusion, the lag phase is the growth phase in which there is intense activity preparing for population growth, but no increase in population.
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What are all of the
differences in the Electron Transport System
between Entamoeba histolytica trophozoite and
Plasmodium falciparum parasites?
There are differences in the Electron Transport System between Entamoeba histolytica trophozoite and Plasmodium falciparum parasites.
In Entamoeba histolytica trophozoite, the electron transport chain is underdeveloped, and it lacks functional complexes I and III, which are part of the ETC.
Instead, this parasite has a simplified ETC consisting of a single NADH dehydrogenase that transfers electrons to the flavin mononucleotide (FMN) prosthetic group of a disulfide-reducing flavoprotein.
On the other hand, the electron transport chain in Plasmodium falciparum parasites has a modified structure.
Malaria parasites lack many conventional ETC components, and their mitochondrial electron transport chain has some unique features, such as a di-iron protein complex not found in any other eukaryotic ETC.
The respiratory chain is an important part of P. falciparum, driving the formation of the mitochondrial membrane potential and ATP synthesis.
However, the entire complex III of the electron transport chain is absent in this parasite.
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Answer a. and c. iii)
1. The equation that represents what would happen to oxygen in the atmosphere if the Sun was blocked from getting to plants is as follows:
6 CO₂ + 6 H₂O + Sunlight energy ---//--> C₂H₁₂O₆ + 6 O₂ (no oxygen)2. The energy pyramid using the cow is given below:
Grass ---> Cow ----> LionAt each higher energy level, only 10% of the total energy of the lower energy level is obtained.
What is an energy pyramid?A pyramid of energy is a graphical representation of the flow of energy through a food chain. It illustrates how the energy is transferred from one trophic level to another, and how the amount of available energy decreases as it moves up the food chain.
As the energy moves up the pyramid, the amount of available energy decreases. Herbivores consume the producers and obtain about 10% of the available energy, while carnivores consume the herbivores and obtain about 10% of the energy that herbivores had.
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1. The BOD5 of a sewage treatment plant effluent is 18 mg/L and the effluent discharge is 4.6 ML/d. The effluent flows into a stream with a BOD5 of 1.75 mg/L and the streamflow is 56 ML/d. What is the combined BOD5 in the stream just below the mixing zone
2. What are the three different types of water quality standards enforced by EPA and state regulatory agencies? Which of the three types of standards is most difficult to enforce?
3. Colloidal particles in an untreated suspension usually have a mix of electrostatic charges making them tend to stick together and easy to filter. True or False?
4. A 240 m section of newly installed 205 mm diameter water main is pressure tested for leakage. It was observed that 12 L of water was pumped into the pipeline to maintain the required pressure of 1000 kPa. The pipe sections are 6 m long between joints. Has the allowable rate of leakage been exceeded?
The combined BOD5 in the stream just below the mixing zone is 1.79 mg/L. The types of water quality standards enforced by EPA and state regulatory agencies are Technology-based standards. Colloidal particles in an untreated suspension usually have a mix of electrostatic charges .The allowable rate of leakage has not been exceeded.
BOD5 is the biological oxygen demand of water measured over a period of 5 days. BOD is a measure of the amount of dissolved oxygen used by microorganisms for decomposition of organic material in water.
The three different types of water quality standards enforced by EPA and state regulatory agencies are:Technology-based standards that limit pollutants based on control technologies. Water quality standards are chemical, biological, and physical criteria that are used to determine the quality of water.
It is true that colloidal particles in an untreated suspension usually have a mix of electrostatic charges making them tend to stick together and easy to filter.
Has the allowable rate of leakage been exceeded?Allowable rate of leakage,
R= (Total volume of leakage/ Total test time)/ Length of pipe section.
Total test time = 2 hours = 120 minutes. Pipe sections are 6m long between joints.Length of 240m pipeline, L=240m/6m= 40.
No of pipe sections= 40Volume of pipeline= π r² LVolume of pipeline= π (0.205/2)² × 240 m = 6.622 m³= 6622 L
From the given data, Total volume of leakage = 12 L
The allowable rate of leakage, R = (Total volume of leakage/ Total test time)/ Length of pipe section= (12L/120 minutes) ÷ 40 = 0.0025 L/min/m². At 1000kPa pressure, the allowable leakage rate is 0.05 L/min/m².The allowable rate of leakage has not been exceeded.
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Identify each element as existing at STP as solid, liquid, gas, or unknown of bromine
The element as existing at STP as solid, liquid, gas, or unknown of
Bromine at STP: Liquid.
What is Bromine?Bromine is a chemical element with symbol Br and atomic number 35. It is a member of the halogen group, and is the second-lightest halogen after fluorine. Bromine is a pale reddish-brown liquid at room temperature and has a strong, disagreeable odor. Bromine is highly reactive, and is used as a source of reactive radicals in organic synthesis. It is also a potent oxidizing agent, and is used mainly in compounds such as bromates and bromides. Bromine is found naturally in the environment in seawater and in some salt deposits. In animals, it is present in trace amounts in the blood and is essential for proper thyroid function.
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Please write brief small summary, thanks.
imagine you are a cytogeneticist preparing a karyotype, but you forgot to add the Giemsa stain in the middle part of the protocol. you are not aware of the mistake, until you look at the slides, as you are getting ready to photograph the metaphase spreads. what would you see on the slides, that would tell you that you made a mistake earlier in the karyotype protocol.
The lack of clear banding patterns on the chromosomes would indicate that you made a mistake earlier in the by not adding the Giemsa stain.
About the karyotype protocolIf you forgot to add the Giemsa stain in the middle part of the karyotype protocol, you would see that the chromosomes on the slides are not clearly visible or distinguishable from one another.
This is because the Giemsa stain is used to create a banding pattern on the chromosomes, which helps to identify and differentiate between the different chromosomes. Without the stain, the chromosomes would appear as a homogenous mass, making it difficult to analyze and prepare a karyotype.
Therefore, the lack of clear banding patterns on the chromosomes would indicate that you made a mistake earlier in the protocol by not adding the Giemsa stain.
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2. A scientist inserts a eukaryotic gene directly into a bacteria's genome. However, the protein produced by the bacteria from the eukaryotic gene does not have the same amino acid sequence as the pro
2. A scientist inserts a eukaryotic gene directly into a bacteria's genome. However, the protein produced by the bacteria from the eukaryotic gene does not have the same amino acid sequence as the protein produced by the eukaryotic cell because of differences in the way that eukaryotes and prokaryotes process mRNA.
In eukaryotes, the mRNA transcript undergoes a process called splicing, where introns (non-coding regions) are removed and exons (coding regions) are joined together. This spliced mRNA is then translated into a protein. However, prokaryotes do not have introns and therefore do not undergo splicing. When the eukaryotic gene is inserted into the bacteria's genome, the bacteria will transcribe and translate the entire gene, including the introns. This will result in a protein with a different amino acid sequence than the protein produced by the eukaryotic cell.
In order to produce the correct protein in the bacteria, the eukaryotic gene would need to be modified to remove the introns before it is inserted into the bacteria's genome. This can be done using molecular techniques such as PCR and restriction enzymes.
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This S-shaped graph is an example of which type of population growth?
A.Logistic
B.Emigration
C.Immigration
D.Exponential
In logistic growth, a citizenry's rate of per capita growth declines as it approaches the carrying capacity, a limit imposed by the environment's limited resources ( K).
The correct statement is A.
What does logistic growth mean in practice?Sheep & harbor seals are a couple of examples from wild populations (Figure 19.6b). Both instances show a population size that briefly exceeds the carrying limit before falling below it.
What does logistic growth mean exactly?Logistic is derived from greek Greek logistikos (computational). The terms "logarithmic" and "logistic" were interchangeable in the 1700s. Logistics is now also utilized for the movement & supply of troops because computation is required to determine the supplies an army needs.
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How does DNA Polymerase/RNA Polymerase know what nucleotides to polymerize during DNA replication/transcription?
DNA polymerase and RNA polymerase are enzymes responsible for polymerizing nucleotides during DNA replication and transcription, respectively. Both enzymes use a template strand of DNA to synthesize a complementary strand of RNA or DNA, respectively.
What does the sequence of template provide ?The sequence of the template strand of DNA provides the information needed for DNA or RNA polymerase to know what nucleotides to polymerize.
DNA polymerase reads the sequence of the template strand of DNA and selects the corresponding nucleotide to add to the growing complementary strand. Similarly, RNA polymerase reads the sequence of the template strand of DNA and selects the corresponding ribonucleotide to add to the growing RNA strand.
The nucleotides are selected based on the base-pairing rules, which dictate that adenine (A) pairs with thymine (T) in DNA, and with uracil (U) in RNA, and that cytosine (C) pairs with guanine (G).
Therefore, By following these rules, the enzymes ensure that the new DNA or RNA strand is complementary to the template strand and that the genetic information is faithfully transmitted from one generation to the next.
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1. Compare and contrast the electrical properties of the three muscles. (5pts) 2. Compare the speed and suration of contraction in the three muscles (5pts)
Skeletal muscles have the fastest action potentials and contract quickly, while smooth muscles have the slowest action potentials and contract slowly, and cardiac muscles have moderate action potentials and a longer duration of contraction than skeletal muscles.
1. The three types of muscles in the human body are the skeletal muscle, cardiac muscle, and smooth muscle. The electrical properties of these muscles differ in terms of their action potentials and the speed at which they contract.
2. In terms of the speed and duration of contraction:
Skeletal muscles have the fastest contraction speed and the shortest duration of contractionCardiac muscles have a moderate contraction speed and a longer duration of contraction than skeletal musclesSmooth muscles have the slowest contraction speed and the longest duration of contraction.Overall, the electrical properties and contraction speed and duration of the three muscles are different, allowing them to perform their specific functions in the body.
Skeletal muscles are used for movement, cardiac muscles are used to pump blood, and smooth muscles are used to control the movement of substances through organs.
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Tell us about a recent experimental discovery involving DNA. Tell
what the investigators found, and the impact that discovery
has.
A recent experimental discovery involving DNA was the identification of a new gene that plays a role in the development of Alzheimer's disease. The impact of this discovery is associated with advances in finding new treatments for Alzheimer's disease.
The gene, called TREM2, was found to be mutated in people with a higher risk of developing the disease. The discovery of this gene could lead to new treatments for Alzheimer's and a better understanding of the disease.
The investigators used DNA sequencing techniques to compare the DNA of people with Alzheimer's disease to those without the disease. They found that the TREM2 gene was mutated in a small percentage of people with Alzheimer's, indicating that it could play a role in the development of the disease.
This discovery has the potential to impact the way that Alzheimer's disease is treated and understood. It could lead to new treatments that target the TREM2 gene, and it could also help researchers to identify other genes that may be involved in the development of the disease. Overall, this discovery is an important step forward in the field of Alzheimer's research.
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DNP makes several impacts in the body. DNP creates a new channel in cell membranes that allows protons (H+) to move from high concentration to low concentration.
1. The movement of these protons through the membrane would be:
A) passive transport B) active transport C) endocytosis D) exocytosis
2. This requires energy. True or False
Researchers used muscle cells grown in petri plates in a lab. They exposed some cells to DNP and some were not exposed to DNP. The amount of glucose broken down in the cells was measured.
3. What is the independent variable for this experiment?
A) presence or absence of DNP
B) amount of glucose broken down
C) the cells without DNP
D) muscle cells
E) Petri plates
F) researchers
So, the true answer is 1)A. passive transpor 2) False 3) A. presence or absence of DNP
Passive transport does not require the energy of a cell to happen because it occurs spontaneously. Because of the existence of a gradient of concentration, a substance moves from high to low concentration by simple diffusion, facilitated diffusion, or osmosis. Passive transport is contrasted to active transport, which demands energy from a cell to proceed.
This requires energy. False. It is incorrect to say that the movement of these protons through the membrane requires energy. Because DNP establishes a new channel in cell membranes that allows protons (H+) to move from high concentration to low concentration, the movement of these protons is due to the difference in the concentration gradient. As a result, the movement of these protons through the membrane does not require energy.
The independent variable is the variable that is changed or manipulated in an experiment. In this case, the presence or absence of DNP is the independent variable. The dependent variable is the one that is being tested in the experiment, and its result is dependent on the independent variable. In this case, the amount of glucose broken down is the dependent variable.
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Please explain and cite sources if possible. Thank you!
1. What are the 3 major groups of helminths? Explain and give 1
example for each group.
Helminths are parasitic worms that live in the intestines and other parts of the body. They are categorized into three major groups: 1) Nematodes (roundworms), 2) Trematodes (flukes), and 3) Cestodes (tapeworms).
1) Nematodes (roundworms): These are unsegmented worms with cylindrical bodies. They live in the intestines, lungs, and other tissues. An example of a nematode is Ascaris lumbricoides, which is a roundworm that causes ascariasis, a common intestinal infection in humans.
2) Trematodes (flukes): These are flat, leaf-shaped worms that live in the intestines, liver, and other organs. An example of a trematode is Schistosoma, which is a fluke that causes schistosomiasis, a disease that affects the urinary and intestinal systems.
3) Cestodes (tapeworms): These are segmented worms that live in the intestines. An example of a cestode is Taenia saginata, which is a tapeworm that causes taeniasis, a disease that can lead to abdominal pain, nausea, and diarrhea.
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Cell extracts of a previously uncharacterized organism catalyzes the hydrolysis of ATP, showing Michaelis-Menten kinetics with a Km of 3.5 x 10-5 M and a Vmax of 90 μmol-min-¹.mg-¹. (mg indicated the amount of total enzyme) (a) Calculate the velocity of the ATPase reaction at the following ATP concentrations: (i) S = 0.75 x 10-6 M (ii) S = 2.5 x 10-4 M (iii) S= 0.035 M (b) What would Vmax be in the presence of 0.0015 M concentration of a competitive inhibitor of ATPase that had a K₁ of 0.0015 M?
At 0.75 x 10-6 M ATP, the velocity of the reaction is 1.78 μmol-min-¹.mg-¹. At 2.5 x 10-4 M ATP, the velocity of the reaction is 63.16 μmol-min-¹.mg-¹. At 0.035 M ATP, the velocity of the reaction is 79.73 μmol-min-¹.mg-¹. Vmax in the presence of 0.0015 M concentration of a competitive inhibitor of ATPase would be 66.8 μmol-min-¹.mg-¹.
We can solve this problems using Michaelis Menten Kinetics.1. Michaelis Menten Equation is given by V = (Vmax [S]) / (Km + [S]), whereV = velocity of the reaction,Vmax = maximum velocity of the reaction,[S] = concentration of substrate,Km = Michaelis Menten constant.
(a)When the concentration of ATP (S) is 0.75 x 10^-6 M,
V = (Vmax [S]) / (Km + [S])V = (90 x 0.75 x 10^-6) / (3.5 x 10^-5 + 0.75 x 10^-6) = 1.78 μmol-min-¹.mg-¹
When the concentration of ATP (S) is 2.5 x 10^-4 M,V = (Vmax [S]) / (Km + [S])V = (90 x 2.5 x 10^-4) / (3.5 x 10^-5 + 2.5 x 10^-4) = 63.16 μmol-min-¹.mg-¹
When the concentration of ATP (S) is 0.035 M,V = (Vmax [S]) / (Km + [S])V = (90 x 0.035) / (3.5 x 10^-5 + 0.035) = 79.73 μmol-min-¹.mg-¹
(b) When the concentration of the competitive inhibitor is 0.0015 M with a K₁ of 0.0015 M,The velocity of the reaction is reduced to half when [S] = K_m = 3.5 x 10^-5 M.With inhibitor, the velocity of the reaction becomes
V = (Vmax [S]) / (Km + [S] (1 + [I] / K_i))V / 2 = (Vmax 3.5 x 10^-5) / (3.5 x 10^-5 + 3.5 x 10^-5 (1 + 0.0015 / 0.0015))1/2 = 1 / (1 + 1) = 0.5Vmax = (V / [S]) x (Km + [S])Vmax = (0.5 x 2.54 x 10^4) / (3.5 x 10^-5 + 2.54 x 10^-4) = 66.8 μmol-min-¹.mg-¹
Thus, Vmax in the presence of 0.0015 M concentration of a competitive inhibitor of ATPase would be 66.8 μmol-min-¹.mg-¹.
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6. Compare: For each beaker, determine how much the temperature changed in the first 100
seconds and how much it changed between 500 and 600 seconds. Compare this to the
temperature difference between the beakers at the start of each interval.
Value
Beaker A temperature change
Beaker B temperature change
0-100 s interval
500-600 s interval
Temperature difference between Beaker A
and Beaker B at 0 seconds.
Temperature difference between Beaker A
and Beaker B at 500 seconds.
wond on the temperature difference
The temperature difference between Beaker A and Beaker B at 0 seconds is zero because the reaction has not yet proceeded.
The temperature difference between Beaker A and Beaker B at 500 seconds is calculated using the formula below:
Temperature difference = Beaker A temp - Beaker B temp
What is the change in temperature in a reaction?The change in temperature in a reaction is the difference between the final temperature and the initial temperature of the reactants or products. This change is a result of the energy released or absorbed during the chemical reaction.
A reaction that releases energy (exothermic) will result in a temperature increase, while a reaction that absorbs energy (endothermic) will result in a temperature decrease. The change in temperature can be measured using a thermometer and is an important factor in determining the rate and efficiency of a chemical reaction.
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1. What are the two main purposes for water storage tanks in a
water distribution system?
2. Identify three consequences of excessive groundwater
withdrawal.
1. Two main purposes for water storage tanks in a water distribution system: There are two main purposes for water storage tanks in a water distribution system. The first one is that they assist in meeting high water demands. Water storage tanks are required to store enough water to satisfy high demand times in the distribution system. During the day, when water use is high, storage tanks help to satisfy this demand.
The second function is that they assist in maintaining system pressure. The storage tank water can be released during high demand times to increase system pressure, ensuring that water is available throughout the distribution network.
2. Three consequences of excessive groundwater withdrawal: Overextraction of groundwater has a number of consequences. As a result of excessive groundwater pumping, the water table may fall, causing wells to dry up, and the groundwater may become saline, rendering it unusable for drinking or irrigation.
Furthermore, it might cause land subsidence, which is the sinking of the earth's surface due to water withdrawal, which can cause property damage and loss of soil fertility. As a result, it's critical to limit groundwater withdrawal and to closely monitor water usage in regions where it's critical.
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A sudden reduction in population size due to a change in the environment, resulting in a gene pool quite unlike the original is called:
Select one:
a. Bottleneck effect.
b. Gene flow.
c. Artificial selection.
d. Natural selection.
A sudden reduction in population size due to a change in the environment, resulting in a gene pool quite unlike the original is called bottle neck effect. The correct answer is A.
The bottleneck effect occurs when a population experiences a sudden decrease in size due to an environmental change, such as a natural disaster or human interference. This results in a gene pool that is significantly different from the original population, as only a small number of individuals survive and contribute to the new population's genetic makeup. This can lead to a loss of genetic diversity and an increase in genetic drift, which can have a significant impact on the population's ability to adapt and survive in the future.
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Which portion of protein coding gene is transcribed and
ultimately translated into a amino acid chain
a. Exon
b. Intron
c. 5’ untranslated region
d. 3’ untranslated region
The portion of the protein coding gene that is transcribed and ultimately translated into a amino acid chain is the Exon.
Exons are sections of DNA that contain the information that codes for a specific protein or part of a protein. The 5' untranslated region (5' UTR) and 3' untranslated region (3' UTR) are also portions of the gene, but they do not contain the information that codes for a protein. Introns are the non-coding portions of the gene that are removed during the process of splicing before the protein is made.
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Calculate the frac!on of the pep!de that has the C-terminal carboxyl group protonated at pH 2.5. Please report your answer as a percent of protonated C- terminal species rela!ve to all (protonated and deprotonated) C-terminal species. Please use the pKa listed on slide 14 of Lecture 2. Round to 2 decimal points. Please show your work.
The pKa of the C-terminal carboxyl group is 3.6 (as listed on slide 14 of Lecture 2). To calculate the fraction of the peptide that has the C-terminal carboxyl group protonated at pH 2.5, we can use the Henderson-Hasselbalch equation:
Rearranging the equation to solve for the fraction of protonated species [tex]([HA]/([HA] + [A-])):[/tex]
[tex]< ([HA]/([HA] + [A-])) = 10^{(pKa - pH)} >[/tex]
Plugging in the values for pKa and pH:
[tex]< ([HA]/([HA] + [A-])) = 10^{(3.6-2.5)} > \\ < ([HA]/([HA] + [A-])) = 10^{1.1} > \\ < ([HA]/([HA] + [A-])) = 12.59 >[/tex]
To convert this fraction to a percentage, we multiply by 100:
[tex]< ([HA]/([HA] + [A-])) * 100 = 12.59 * 100 > \\ < ([HA]/([HA] + [A-])) * 100 = 1259 >[/tex]
Therefore, the fraction of the peptide that has the C-terminal carboxyl group protonated at pH 2.5 is 1259%.
To round to 2 decimal points, we can use the following formula:
Therefore, the fraction of the peptide that has the C-terminal carboxyl group protonated at pH 2.5 is 1259.00%.
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Hipotesis que componentes tiene la infusion de toronjil que alivia la infeccion
La hipótesis es que la infusión de toronjil contiene aceites esenciales, flavonoides y ácidos fenólicos que pueden contribuir a aliviar la infección. Sin embargo, se necesitan más estudios para confirmar esta hipótesis y para entender mejor cómo estos componentes actúan en el cuerpo para aliviar la infección.
La hipótesis es una suposición que se hace para explicar un fenómeno o un conjunto de observaciones. En este caso, la hipótesis es que la infusión de toronjil tiene ciertos componentes que alivian la infección. Los componentes que podrían estar presentes en la infusión de toronjil y que podrían estar contribuyendo a aliviar la infección son:
- Aceites esenciales: El toronjil contiene aceites esenciales como el citral, el geraniol y el linalool, que tienen propiedades antimicrobianas y pueden ayudar a combatir las infecciones.
- Flavonoides: Los flavonoides son compuestos antioxidantes que se encuentran en el toronjil y que pueden ayudar a reducir la inflamación y a fortalecer el sistema inmunológico.
- Ácidos fenólicos: El toronjil también contiene ácidos fenólicos como el ácido rosmarínico y el ácido cafeico, que tienen propiedades antiinflamatorias y antimicrobianas.
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PCR techniques are now widely available for DNA analysis and testing. As a biomedical scientist, discuss your opinion on the pros and cons of DNA testing of all persons the population. Should the medical establishment collect genetic information for all patients?
The use of PCR techniques for DNA analysis and testing is a powerful tool that can provide valuable insight into the diagnosis and treatment of various medical conditions.
There are a number of pros and cons associated with the use of PCR in DNA testing. On the one hand, it can be used to detect genetic mutations that can lead to the development of diseases, provide more accurate diagnoses, and inform targeted treatments. On the other hand, there are privacy concerns associated with collecting and storing this type of information.
In terms of collecting genetic information for all patients, it is ultimately up to the medical establishment to determine whether this practice is beneficial. While it could potentially provide significant medical advantages, it could also pose a risk to individual privacy. As such, it is important for medical professionals to weigh the pros and cons of this practice carefully before implementing it.
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new individuals are formed by a combination of two ____ cells.
Answer: Sperm and egg cells is the answer.. which means it would either be sex cells or gametes!
Hope that helps... :)
Explanation:
A patient who is unable to constrict their pupil & whose medial sclera is exposed most likely has an issue with which CN?
The patient's issue is likely related to Cranial Nerve III (oculomotor nerve). This nerve is responsible for pupil constriction and movement of the eye muscles.
The oculomotor nerve, often referred to as the third cranial nerve, cranial nerve III, or simply CN III, is a cranial nerve that enters the orbit through the superior orbital fissure and innervates extraocular muscles, which are responsible for most eye movements and eyelid adduction. The nerve also has fibres that innervate the muscles in the intrinsic eye, allowing for pupillary constriction and accommodation (ability to focus on near objects as in reading). The embryonic midbrain's basal plate is the source of the oculomotor nerve. The control of eye movement is likewise mediated by cranial nerves IV.
The oculomotor nerve arises from the third nerve nucleus at the level of the superior colliculus in the midbrain. The third nerve nucleus is placed ventral to the cerebral aqueduct, on the pre-aqueductal grey matter. Then, the red nucleus receives the fibres from the two third nerve nuclei that are laterally situated on either side of the cerebral aqueduct. The oculomotor sulcus, a groove on the lateral wall of the interpeduncular fossa, is where fibres from the red nucleus exit the brainstem and emerge from the brainstem material. At this point, the nerve is covered in a pia mater sheath and contained in an extension from the arachnoid. It travels between the posterior cerebral and superior cerebellar regions (below).
the anterior and lateral dura mater to the posterior clinoid process, travelling between the free and connected boundaries of the tentorium cerebelli. and posterior cerebral arteries (above).
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Two broad concepts exist regarding the action of hormones at the cell membrane, based on the chemical structure/composition (polarity) of the hormone. What are the respective mechanisms whereby the "signal" is detected and transmitted intracellularly, eventually affecting DNA transcription? Explain.
Two broad concepts exist regarding the action of hormones at the cell membrane, based on the chemical structure/composition (polarity) of the hormone. The respective mechanisms whereby the "signal" is detected and transmitted intracellularly, eventually affecting DNA transcription are the water-soluble hormones and the lipid-soluble hormones.
Water-soluble hormones, such as peptide hormones, are polar and cannot pass through the lipid bilayer of the cell membrane. Therefore, they bind to a receptor on the cell membrane, which activates a second messenger system within the cell. This second messenger system transmits the signal intracellularly, eventually affecting DNA transcription.
Lipid-soluble hormones, such as steroid hormones, are nonpolar and can pass through the lipid bilayer of the cell membrane. They bind to an intracellular receptor, which then translocates to the nucleus and binds to specific regions of DNA. This binding affects DNA transcription and the expression of specific genes. In summary, water-soluble hormones transmit their signal through a second messenger system on the cell membrane, while lipid-soluble hormones transmit their signal through an intracellular receptor that directly affects DNA transcription.
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What are some credible sources of drug information Kaylyn can use to complete her task?
Kaylyn can finish her assignment by using a number of reliable sources of drug information. NIDA: National Institute on Drug Abuse, SAMHSA, ASAM, MedlinePlus, and CDC are some resources.
Kaylyn can finish her assignment by using a number of reliable sources of drug information. These sources comprise, among others:
The National Institute on Drug Abuse (NIDA) is a federally funded research organisation that offers in-depth knowledge about drug abuse and addiction.
The Substance Abuse and Mental Health Services Administration (SAMHSA) is a federal organisation that focuses on the prevention and treatment of drug misuse.
The Centers for Disease Control and Prevention (CDC) is a federal organisation that disseminates knowledge about wellness and illness prevention.
MedlinePlus - The National Library of Medicine offers MedlinePlus as a consumer health information service.
A professional society with a focus on addiction medicine is the American Society of Addiction Medicine (ASAM).
Before deciding on any course of drug use or therapy, Kaylyn should speak with a licenced healthcare expert.
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What diseases are caused by Rhizoctonia solani?
Some diseases caused by Rhizoctonia solani are Rhizoctonia Blight, Gray Leaf Spot and Southern Blight.
Rhizoctonia solani can cause several diseases in plants. Rhizoctonia solani is a filamentous fungus that belongs to the group of Basidiomycetes fungi. This fungus causes significant damage to various economically important crops, including potatoes, sugar beet, wheat, and others.
The pathogen can infect plants at any growth stage, but the damage is usually more severe during the early stages of plant development. Some of these are as follows:
Rhizoctonia Blight: This disease affects turfgrass, especially during the summer months. The symptoms of this disease include brown patches of grass that appear to be "sunken" or "patchy."
Gray Leaf Spot: This disease affects corn plants, causing small, oval-shaped spots to appear on the leaves. The spots are gray in color and have brown margins. Eventually, the leaves will turn brown and die.
Southern Blight: This disease affects vegetables, flowers, and ornamental plants. The symptoms include wilting, yellowing, and death of the plant.
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