Answer:D.
Explanation:
You may carry an opened container of alcohol in your vehicle only if the container is _____.
Answer:closed
Explanation:
Based on the data presented in the passage, which statement best describes the HSP110ΔE9 allele?
A.Cancer-promoting and dominant to HSP110WT
B.Cancer-promoting and recessive to HSP110WT
C.Cancer-suppressing and dominant to HSP110WT
D.Cancer-suppressing and recessive to HSP110WT
Answer:
C.Cancer-suppressing and dominant to HSP110WT
Explanation:
This is a case study on how genetic information are transmitted from gene to protein
Its seen from figure 1 that HSP110ΔE9 reduces growth of tumor (cancer-suppressing) unlike the HSP110WT
HSP110ΔE9 restrains HSP110WT ability to stop aggregation and reduces apoptosis since its the dominant allele and HSP110WT is the recessive allele. This info can be reduced from table 2
Detailed data from the text is needed to accurately define the behavior and characteristics of the HSP110ΔE9 allele in regards to its dominant/recessive nature and whether it plays a role in promoting or suppressing cancer.
Explanation:Without the specific data from the passage, we can't confidently determine the characteristics of the HSP110ΔE9 allele. Generally, an allele can be either dominant or recessive, and its impact, such as promoting or suppressing cancer, is based on scientific research. The role of the HSP110WT allele would also be crucial to making this determination. The HSP110ΔE9 allele is a cancer-promoting and dominant to HSP110WT allele. This means that having the HSP110ΔE9 allele increases the risk of developing cancer and it overrides the effects of the HSP110WT allele. In other words, even if an individual has one copy of the HSP110WT allele, having the HSP110ΔE9 allele can still lead to the promotion of cancer.
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The genetic information needed for a cell to participate in conjugation resides in the DNA of a cell’s _____. Select one:
a. Mitochondria
b. Bacterial chromosome
c. F plasmid
d. F pilus
Answer:
F plasmid.
Explanation:
Conjugation may be defined as the transfer of the genetic material from one bacterial cell to the another cell by the direct surface contact. This illustrate the phenomena of the horizontal gene transfer.
The plasmid is the extra chromosomal DNA present in the bacteria and can replicate independently of the chromosomal DNA. F plasmid or fertility plasmid is generally transfer during the conjugation process from F negative cells to F positive cells.
Thus, the correct answer is option (c).
The genetic information required for a cell to engage in conjugation is located in the cell's F plasmid, which contains the necessary genes for pilus formation and plasmid replication.
Explanation:The genetic information needed for a cell to participate in conjugation resides in the DNA of a cell's F plasmid. During conjugation, DNA is transferred from one prokaryote to another through a structure known as a conjugation pilus, or F pilus, which is instrumental in bringing the donor and recipient cells into direct contact. The F plasmid, also called the fertility factor, contains the genes necessary for the formation of the F pilus and for the replication of the plasmid via the rolling circle method, enabling the donor cell (F+ cell) to transfer genetic material to the recipient cell (F- cell).
Because we hear so many sounds simultaneously, the first stage of listening is to:
Answer:
receive the sound and then filtration of the messages to avoid confusion.
Explanation:
Active listening process is into five stages: 1) receiving the message, 2)understanding, 3)remembering 4) evaluating the selected message, and 5) response to the message.
Receiving is the first stage of the listening skill which involves the hearing of the message and then filtration of the message. The hearing of the message involves the focused attention while filtration of the message involves the isolation of the message from a mixture of messages. The filtration is performed to avoid the mixing of the stimuli.
Thus, receive the sound and then filtration of the messages to avoid confusion is the correct answer.
The various processes of cellular respiration take place in the cytoplasm and mitochondria. By moving between these different chemical environments our cells are able to generate ATP more efficiently. What compartments do Gylcoysis, the Krebs Cycle and the Electron Transport Chain occur in?
Answer:
Glycolysis: Cytoplasm
Kreb's cycle: Mitochondrial matrix
Electron transport chain: Inner mitochondrial membrane
Explanation:
Glycolysis is the first stage of cellular respiration and occurs in the cytoplasm. It does not require the presence of oxygen. Glycolysis enzymes are present in the cytoplasm. Pyruvate formed by the glycolytic breakdown of glucose enters the mitochondrial matrix and undergoes oxidative decarboxylation to form acetyl CoA. Acetyl CoA enters the Kreb's cycle. All the reactions of Kreb's cycle occur in the matrix of mitochondria.
The reducing powers NADH and FADH2 enter the electron transport chain to become oxidized again. The electron transport chain consists of a series of electron carriers embedded in the inner mitochondrial membrane.
Presumably, hyperglycemia promotes cellular dehydration because: glucose, as an energy source, accelerates the osmotic work performed by plasma membranes. glucose, as an energy source, accelerates plasma membrane ion exchange pumps. glucose molecules raise the osmotic pressure of the extracellular space. glucose molecules are exchanged for water molecules across the plasma membrane.
Answer:
The answer is C.
Explanation:
Hyperglycemia is a condition where the body does not produce enough insulin for different reasons and this results in excess amounts of sugar in the bloodstream.
Hyperglycemia can cause cellular dehydration because glucose is causes the glucose molecules to build up in the bloodstream of the body, increasing it's concentration, which in turn causes a density difference of glucose between the two environments, the inside of the cells and the extracellular space, thus resulting in an increased osmotic pressure.
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An adult client was burned in an explosion. The burn initially affected the client’s entire face (anterior half of the head) and the upper half of the anterior torso, and there were circumferential burns to the lower half of both arms. The client’s clothes caught on fire, and the client ran, causing subsequent burn injuries to the posterior surface of the head and the upper half of the posterior torso. Using the rule of nines, what would be the extent of the burn injury?1. 18% 2. 24% 3. 36% 4. 48%
Answer:
3. 36%
Explanation:
The rule of nines gives the percentage of burn and it provide insights on treatment decisions amd steps to take next such as fluid resuscitation. It helps to ascertain If the client should be transfered to a burn unit. It also helps in determining the body surface area on an adult that has been burned.
In the rules of nines the initial burn and the subsequent burn percent of the anterior half of the head is 4.5%, and the initial burn and the subsequent burn percent of the upper half of the anterior and posterior torso is 9% while the initial burn and the subsequent burn percent of the lower half of both arms is 9%.
On addition of all the percentage for both initial and subsequent burn, it will give a total of 36%
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If you were performing an actual DNA gel electrophoresis, what process would you have performed beforehand to amplify the DNA isolated from samples?
Answer:
Polymerase chain reaction (PCR)
Explanation:
PCR is a technique used to create many copies (amplify) of small segments of DNA. In order to achieve first, the DNA must be denaturalized with heat forming two strands that will serve as templates for the Taq polymerase, an enzyme that will duplicate de original DNA. This cycle is repeated 30 to 40 times to get as many copies as possible.
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What type of species, if removed from the community, could lead to the collapse of the entire community?
Answer:
The correct answer will be - Keystone species
Explanation:
Keystone species refers to the species present in a community which has a large effect or great influence on the surrounding environment.
The concept of Keystone species was introduced by the Robert T. Paine in 1969 to the species which help maintain the structure of the biological community.
The keystone species are called keystone species as its presence affect the other organisms directly and if removed from a community it will lead to the shift or change in the structure of the community.
Thus, Keystone species is the correct answer.
Which of the following ideas support our current scientific understanding of the development of life on Earth?
Answer:
Development of Life on Earth- From the origin of life on the planet Earth, which also considered as the only habitable place in this universe. There was always a change in the entities which hold life inside it. Many simple organism went on to develop into more complex beings. As organism got into a different shapes, as there cell developed more, as time passed on. This change is refereed to as "Evolution".
Explanation:
Evolution:
"The development or growth of an entity from a less perfect form to a more complex form is called as evolution."
Evolution across time was always natural, the process happened either due to change in environment or due to change in the organism behavior etc. As there was a sort of development which occurred in the simple form of organism to develop themselves into a more complex shapes, having a more complex set of functions and processes inside there bodies.
Nitrogen from the atmosphere is combined into organic compounds by legumes, such as _________________.
a. beans, peas, or lentils
b. rice, wheat, or corn
c. apples, pears, or oranges
d. spinach, chard, or lettuce
Answer:
a. beans, peas, or lentils
Explanation:
Living organisms need nitrogen to make proteins. These proteins are used for growth and making enzymes. Most plants do not have a way of getting nitrogen directly from the atmosphere. However leguminous plants are unique in that they have nodules that can fix nitrogen from the air.
Select the correct statement about the special fetal blood vessels.
A The umbilical vein becomes the ligamentum teres.
B The distal parts of the umbilical arteries form the superior vesical arteries.
C The hepatic portal vein forms from the umbilical artery.
D The fossa ovalis becomes the f
The question is incomplete. The complete question is:
Question: Select the correct statement about the special fetal blood vessels.
A The umbilical vein becomes the ligamentum teres.
B The distal parts of the umbilical arteries form the superior vesical arteries.
C The hepatic portal vein forms from the umbilical artery.
D The fossa ovalis becomes the f oramen ovale.
Answer:
C) The umbilical vein becomes the ligamentum teres.
Explanation:
After birth, many vascular changes occur in the newborn child as the pulmonary, renal and digestive systems start functioning. As the umbilical cord is tied off and severed, the blood does not flow through the umbilical arteries. The umbilical vein in the child collapses but remains as the ligamentum teres. Ligamentum teres is a round ligament and serves to attach the umbilicus to the liver. It is present in the free border of the falciform ligament of the liver.
A researcher has identified two transposable elements, A and B, in cats. Even in the absence of B, A can insert itself into locations throughout the cat genome. However, in the absence of A, B is immobile. The researcher can conclude that A is a(n) _____ element, and B is a(n) _____ element.
Answer:
autonomous; nonautonomous
Explanation:
A is autonomous trasnposable element because it has the ability to move on its own with out the need of element B even if it is absent.
The B element is immobile in the absence of element A . Element B will move on its way only in the presence of element . this type of element is called as non-autonomous because it can not move on it own and it will always need element A for its movement.
Cell population growth can be represented by the number ______ with an exponent, where the exponent increases by ______ in each generation.
Answer:
Cell population growth can be represented by the number 2 with an exponent, where the exponent increases by 1 in each generation.
Explanation:
As we know, every cell doubles after the process of cell division. Hence the cell population growth is represented by the number 2. The cell population growth is also known as the doubling time of a cell. The proliferation of cells is often written as:
Nt = N0 2tf
Where,
Nt is the number of cells at a particular time t.
N0 is the initial number of cells.
f is the frequency of cell cycles
Some viral species may derive their __________ from intracellular membranes, such as the nuclear membrane or endoplasmic reticulum.
Answer:
the correct answer is " viral envelop" .
Explanation:
some viral species may derive their " envelop" from the intracellular membranes , such as nuclear membrane or ER.
in some animal viruses, the nucleocapsid (nucleic acid and capsid) is covered by another membrane derived from the host cell, the envelop.
Which portion of the central nervous system coordinates motor activities and aids in maintaining balance?a. spinal cordb. medullac. cerebellumd. cerebrum
Answer:
c. Cerebellum
Explanation:
The cerebellum is a part of the hind brain and situated behind the part of brain stem. It is responsible for various functions which includes motor skills. It regulates motor skills such as balance, coordination and posture. It receives information from sensory systems to do motor skills. It coordinates voluntary movements such as posture, balance which results in smooth and balanced muscular activity.
Some scientists have proposed that the earliest forms of life may have existed in an "RNA World" where RNA was both the genetic material and responsible for enzymatic activity. Imagine that you have recreated such a life form. What would demonstrate that RNA, but not protein or DNA, is necessary and sufficient for these functions?
Answer:
The organism lives and replicates despite RNase and DNase treatment, but the organism dies when treated with protease
Explanation:
Final answer:
To demonstrate that RNA is necessary and sufficient for the earliest life forms, one could create an environment where RNA molecules self-replicate and catalyze essential biochemical reactions without DNA or proteins, providing evidence for the RNA world hypothesis.
Explanation:
The RNA world hypothesis suggests that the earliest life forms used RNA both for genetic information storage and catalytic functions, essentially fulfilling the roles of both DNA and proteins in modern organisms. To demonstrate that RNA can suffice for these functions in an artificially recreated life form, one could design an experiment showing that RNA molecules alone can replicate, synthesize proteins, and facilitate other life-sustaining reactions without the aid of either DNA or proteins. This could involve the synthesis of ribozymes, which are RNA molecules with enzymatic activity, capable of catalyzing their own replication and other biochemical reactions necessary for life. The continued functioning and replication of such a system in a controlled environment without the introduction of DNA or proteins would provide strong evidence supporting the RNA world hypothesis.
Because the body can store water like it does fat, humans can survive for 10 to 15 days without water as long as they have food to eat.
a) true
b) false
What would be some of the properties of molecules that could be candidates for biological magnification?
Answer:
Explanation:Toxic materials e.g synthetics
They become even more toxic as they are converted to more toxic products by reaction with other substances or by metabolism of microorganism
The trp operon contains five genes: trpE, trpD, trpC, trpB, and trpA. These five genes code for components that produce three enzymes that catalyze the biosynthesis of tryptophan. The trpL region is the leader region, which helps regulate transcription once RNA polymerase has initiated transcription.The trp operon also undergoes negative regulation by a repressor. Tryptophan is the signal molecule (effector molecule) that binds to the repressor. Determine which events lead to an increase in transcription. The trp operon is transcribed when a. the trp repressor dissociates from DNA. b. the trp repressor is inactive. c. Trp is present at high concentrations inside the cell. d. the trp repressor is bound to the operator. e. trp binds to the repressor.
The trp operon, which contributes to tryptophan synthesis in bacteria, increases transcription when tryptophan levels in the environment are low due to an inactive repressor protein. When tryptophan levels are high, the repressor protein binds to the operon, preventing transcription and thus decreasing tryptophan synthesis.
Explanation:The trp operon, an essential part of many bacteria including E. coli, is responsible for the synthesis of tryptophan. This occurs when the environment has low levels of tryptophan. The operon is regulated by a repressor protein and the presence of tryptophan. In a low tryptophan environment, the repressor protein does not bind to the operator sequence, allowing transcription of the genes and thus, production of tryptophan. The statements that 'the trp repressor dissociates from DNA' and 'the trp repressor is inactive' relate to a situation that would result in increased transcription, as both conditions would enable transcription to occur, increasing tryptophan production.
However, transcription is inhibited when tryptophan levels in the cell are high, which is a state of the operon known as 'repression'. This happens when tryptophan molecules bind to the repressor protein, causing it to change shape and bind to the operator sequence. This blocks the RNA polymerase from accessing the DNA and transcribing the necessary genes. In this context, 'tryptophan is present at high concentrations inside the cell', 'the trp repressor is bound to the operator', and 'trp binds to the repressor', all depict situations that lead to a decrease, not an increase, in transcription.
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Monounsaturated fatty acids have a single double bond. Polyunsaturated fatty acids have multiple double
bonds. Which of the following statements is true?
A. Monounsaturated fatty acids store more energy than polyunsaturated fatty acids.
B. Polyunsaturated fatty acids store more energy than monounsaturated fatty acids.
C. Polyunsaturated fats have a lower melting point than monounsaturated fatty acids.
D. Monounsaturated fats have a lower melting point than polyunsaturated fatty acids.
Final answer:
The correct statement is that polyunsaturated fats have a lower melting point than monounsaturated fatty acids, due to the kink in their chains caused by multiple double bonds which prevents close packing of the molecules.
Explanation:
Monounsaturated fatty acids (MUFAs) have one double bond within the carbon chain, while polyunsaturated fatty acids (PUFAs) have more than one. When it comes to storing energy, saturated fats tend to store more energy because they have more single bonds, which hold more energy than double bonds. Hence, neither monounsaturated nor polyunsaturated fatty acids store more energy based solely on their saturation level. Therefore, statement A and B are incorrect.
The correct statement is C: Polyunsaturated fats have a lower melting point than monounsaturated fatty acids. The multiple double bonds in PUFAs create a kink in the fatty acid chain, preventing the molecules from packing closely together. This leads to a lower melting point, making polyunsaturated fats liquid at room temperature and more prone to solidify when refrigerated as compared to monounsaturated fats. Thus, monounsaturated fats will typically solidify at a higher temperature than polyunsaturated fats.
How does the neuron at a neuromuscular junction interact with the muscle to which it is attached
Answer:
through synaptic transmission as action potential , which transmits the action potential across to synapse( neuromuscular juction ) to reach the postsynaptic end plate. the end -plate terminated on the muscles to bring response.
Explanation:
Lymphatic tissue contains a large number of lymphocytes distributed in a specialized form of ___.
Answer:
Reticular connective tissue
Explanation:
The lymphatic system consists of a fluid called lymph, lymphatic vessels and organs containing lymphatic tissues. Lymphatic tissue is a specialized form of reticular connective tissue that contains large numbers of lymphocytes. Reticular connective tissue is a fine network of reticular fibers and reticular cells. The reticular fibers are the thin form of collagen fiber. Lymphatic tissues are present in spleen and lymph nodes. These tissues are involved in the filtration of blood and removal worn-out blood cells in the spleen. Microbes are filtered through lymphatic tissues in lymph nodes.
Lymphatic tissue features a large number of lymphocytes that are primarily located in secondary lymphoid tissue such as the spleen, lymph nodes, and MALT. These locations are crucial for the immune response and antigen presentation by B and T lymphocytes, which are essential for producing antibodies and effector cells against pathogens.
Explanation:Lymphatic tissue contains a large number of lymphocytes distributed in a specialized form of secondary lymphoid tissue. This includes the spleen, lymph nodes, and mucosa-associated lymphoid tissue (MALT) among others. Lymph nodes play a pivotal role in the immune system; they trap pathogens and facilitate an immune response. Here, lymphocytes such as B and T cells, macrophages, and dendritic cells engage in antigen presentation, which is essential for the activation of the lymphocytes.
When an antigen is detected, B lymphocytes react by producing antibodies, while T lymphocytes may differentiate into various effector cells. These effector cells help neutralize pathogens and provide immunity, a vital function that can be enhanced through vaccinations which prepare the immune system to fight specific infections.
The lymphatic system not only involves lymph nodes but also other structures like tonsils, adenoids, thymus, and spleen where regulation and maturation of immune cells take place, supported by the circulation of lymph fluid throughout the body.
When investigating the effect of co-culturing NK cells with eosinophils for up to 12 hours, researchers chose to co-culture all samples in the presence of interleukin-5, a cytokine.
What is the most likely reason for this decision?
A. Interleukin-5 facilitates degranulation in NK cells.
B. Interleukin-5 inhibits the cytotoxic effects that NK cells have against eosinophils.
C. Eosinophils die rapidly when not exposed to interleukin-5.
D. The researchers were directly testing the effect of interleukin-5 on eosinophil activity.
Answer:
option B
Explanation:
Eosinophil is immune system inflammatory cells which kills bacteria and other virulent material and do inflammation by releasing inflammatory mediators like cytokine. And for removing these dead cells NK cells do apoptosis of the cell for preventing tissue damage. And for preventing the destruction of eosinophilic cell interlukin-5 is used in this process.
Researchers added interleukin-5 to the co-culture of NK cells and eosinophils to ensure the survival and proper function of eosinophils, as this cytokine is vital for their activation and longevity. the correct answer is C.
When investigating the effect of co-culturing NK cells with eosinophils for up to 12 hours, researchers chose to co-culture all samples in the presence of interleukin-5, a cytokine. The most likely reason for this decision is that interleukin-5 is known for its role in the development and activation of eosinophils. Specifically, interleukin-5 attracts and activates eosinophils, as described in the information provided. This suggests that the correct answer is C. Eosinophils die rapidly when not exposed to interleukin-5. This is because interleukin-5 is essential for the survival and function of eosinophils, and in its absence, they would likely not survive the duration of the co-culture, which could skew the results of the investigation.
A new soil microorganism has been described. On some growth media, it forms colonies of unicellular organisms, but under certain conditions, it forms long, multicellular filaments and spores. The cells have nuclei, and their cell walls are composed of chitin.
To which of the following groups does this new organism belong?
A. protozoa
B. fungi
C. archaea
D. algae
E. bacteria
Answer:
The correct answer is option B, that is, fungi.
Explanation:
The body of a fungus is formed of tiny tubes or filaments known as hyphae. It comprises nuclei and cytoplasm. A tangled mass of hyphae is known as mycelium, which enhances the surface area of the fungi to captivate more nutrients.
Fungi are eukaryotic, most of the fungi are multicellular, while some are unicellular like yeast. The cell walls of fungi are formed of chitin in place of cellulose like that found in a plant. Thus, the mentioned organism belongs to fungi category.
Answer:
B. fungi
Explanation:
The new orgnism in the question is a fungus whcih is included in the Kingdom Fungi. The body of a fungus is called mycelium. The mycelium is made of many hypha. Each cell of a hypha have cell wall. The fungal cell wall is made of chitin which is a derivate of glucose.
Chitin is a type of polysaccharides having a long chain polymer of N-acetylglucosamine.
The cell of a fungus lack chloroplast, so nutritionally members of the fungi are heterotrophs. They feed on dead and decaying matter, thus they are saprotrophs.
You are interested in studying a gene called CFTR because mutations in this gene in humans cause cystic fibrosis. You have made a line of mice that lack the mouse CFTR gene. These mice are unable to clear bacteria from their lungs, so they get lung disease. You put a normal human CFTR gene into some of these mice and discover that the mice with the human gene are able to clear bacteria from their lungs and no longer get lung disease. From this experiment, you can conclude that:
A. The DNA sequences of the mouse CFTR gene and human CFTR gene are identical (0.7%).
B. The amino acid sequences of the mouse CFTR protein and the human CFTR protein are identical (1.1%).
C. The mouse CFTR gene and human CFTR gene encode proteins that can serve a similar function (70.9%).
D. Both answers b and c are true (20.8%).
E. All of the above are true (6.5%).
Answer:
Answer is C.
Explanation:
The mouse CFTR gene and human CFTR gene encode proteins that can serve a similar function (70.9%).
Which of the following statements regarding sudden infant death syndrome (SIDS) is correct?1 Certain cases of SIDS are predictable and therefore preventable.2 SIDS is most commonly the result of an overwhelming infection.3 Most cases of SIDS occur in infants younger than 6 months.4 The cause of death following SIDS can be established by autopsy.
Answer:
The correct statement is 3: "Most cases of SIDS occur in infants younger than 6 months".
Explanation:
1) Certain cases of SIDS are predictable and therefore preventable. FALSE. There aren´t predictable cases of SIDS because this syndrome does not present any symptoms that should be considered to prevent death. There is no specific treatment for SEDS. There are, though, some considerations to take such as prenatal attention, position while sleeping, clothing, checking their temperature, among others.
2) SIDS is most commonly the result of an overwhelming infection. FALSE. Researchers do not know the exact cause of SIDS, but studies have demonstrated that some babies showed irregular brain functioning that made it difficult to wake up while they could not breathe or the area that controlled breathing was affected; differences in genes and their interaction with the environment that took them to death; irregular heart funtioning; respiratory infections.
3) Most cases of SIDS occur in infants younger than 6 months. TRUE. SIDS is one of the principal causes of death in infants between a month and a year old, occurring more frequently in babies between two and four months old.
4) The cause of death following SIDS can be established by autopsy. FALSE. The baby can be diagnosed after death with a complete investigation, which includes the examination of the body, examination of the death place, revision of illness before death, or any other health precedent.
1. Movement of fluids through a selectively permeable membrane caused by hydrostatic pressure is referred to as ____________ .
2. The pressure exerted by a fluid on the inside wall of its container (or vessel, in the case of the human body), is called ____________ .
3. The movement of particles from an area of high concentration to an area of low concentration describes ____________ .
4. Movement away from high solvent concentration or towards high solute concentration describes ____________ .
5. The movement of small, polar molecules across the plasma membrane by a carrier protein is called ____________ .
Answer:
1. FILTRATION
2. HYDROSTATIC PRESSURE
3. DIFFUSION
4. OSMOSIS
5. FACILITATED DIFFUSION
Explanation:
1. Filtration is a variation of diffusion. It is the movement of a material according to its concentration gradient through a semi-permeable membrane. This movement is facilitated and enhanced by an osmotic or hydrostatic pressure, causing the substances to filter more rapidly. A typical example of this process is in human excretion, where the kidney forces large amount of water and dissolved solutes out of the blood stream into renal tubules. The rate of this movement is dependent on the pressure formed by the concentration gradient.
2. Hydrostatic pressure is force exerted by an intravascular fluid (blood plasma) or extravascular fluid on its wall. It refers to the pressure exerted on the wall of a confined space by a fluid, due to the weight of the fluid (blood, in this case) above it. Hydrostatic pressure increases in proportion to depth measured from the surface because of the increasing weight of fluid exerting downward force from above.
3. Diffusion is the net movement of substances/particles from an area of higher concentration to an area of lower concentration until the concentration is equal. The movement occurs as a result of random and constant motion of all molecules, atoms, or ions. Since it occurs randomly, some molecules may be moving against concentration gradient while others may move across/down concentration gradient. The "net" indicated the overall and end result of the movement. Diffusion is a form of passive transport i.e. it involves movement of molecules down a gradient. Hence, it does not require energy.
4. Osmosis is the passive movement of water molecules from a region of lower solute concentration (higher solvent) to a region of higher solute concentration (lower solvent) through a selectively permeable membrane. A concentration can either be hypertonic (higher solute in solution than in cell), isotonic (equal solute in solution and cell) and hypotonic (lesser solute in solution than in cell). The direction of the movement of water is dependent on the concentration i.e. if a cell is placed in a hypertonic solution, water moves out of the cell, likewise, if please in a hypotonic solution, water moves into the cell.
5. Facilitated diffusion is the diffusion of polar and charged molecules through carrier proteins, called permeases, that are specific to one type of molecule in the plasma membrane. These materials are ions or polar molecules that are repelled by the hydrophobic parts of the cell membrane.This protein binds a substance and, in doing so, triggers a change of its own shape, moving the bound molecule from the outside of the cell to its interior. An example of protein channel is AQUAPORINS, which allows water molecules pass through the cell membrane. This process is also a passive transport and does not require energy.
*9th grade* LABEL PARTS OF A CELL (HELP MEH)
Answer: A- Lysosome
B: Endoplasmic Reticulum
C: Golgi Body
D: Cell Membrane
E: Nucleus
F: Ribosome
G: Cytoplasm
H: Mitochondria
coli has a positive nitrate test (ability to reduce nitrate). This would indicate that the organism can carry out ________ respiration.
Answer: anaerobic respiration
Explanation:
Anaerobic respiration is simply respiration in the ABSENCE OF OXYGEN.
A positive nitrate test mean Escherichia coli reduces NO3 (Nitrate) to NO2 (Nitrite). This is based on its ability to produce nitrate reductase enzyme that catalyze the reduction process. And note that this reaction occurs in the ABSENCE OF OXYGEN.
This makes E. coli an ANAEROBE ( an organism that can survive in the absence of oxygen)