1461150303-83531ec6-2743-477d-9cf4-ccb71fa823eb

1. A method of treating a patient having acute myeloid leukemia (AML) or myelodysplastic syndromes (MDS), comprising administering an unconjugated humanized M195 antibody to the patient at a dose of 1.5 to about 12 mgkg body weight, whereby progression of the AML or MDS is inhibited.
2. The method of claim 1, wherein the antibody is administered at weekly intervals for a period of about one to three months.
3. The method of claim 2, further comprising administering the antibody at biweekly intervals for a period of one to six months.
4-10. (canceled)
11. The method of claim 1, whereby at least one symptom of AML associated cachexia is reduced.
12. (canceled)
13. The method of claim 1, wherein the humanized M195 antibody decreases the number of involved non-malignant effector cells, andor decreases the levels of one or more inflammatory cytokines, chemokines or growth factors, in the patient.
14-17. (canceled)
18. The method of claim 1, wherein the patient is at least 60 years of age.
19-27. (canceled)
28. A method of treating acute myeloid leukemia (AML) or myelodysplastic syndromes (MDS) in a patient, or of preventing or delaying recurrence of AML or MDS in a patient in remission, comprising administering an unconjugated humanized M195 antibody to the patient at a dose of 550-650 mg regardless of body weight.
29. The method of claim 28, wherein the antibody is administered at weekly intervals for a period of about one to three months.
30. The method of claim 28, whereby at least one symptom of AML associated cachexia is reduced.
31. The method of claim 28, wherein the patient is at least 60 years of age.
32. The method of claim 28, wherein the antibody is administered at a dose of about 600 mg.
33. The method of claim 32, wherein the antibody is administered at weekly intervals for a period of about one to three months.
34. The method of claim 32, wherein the patient is at least 60 years of age.

The claims below are in addition to those above.
All refrences to claim(s) which appear below refer to the numbering after this setence.

1. A regulator coupling comprising
a dissipation-type voltage regulator, which has an input for receiving input voltage (Vs) and an output for providing output voltage (Vout), and
means (Vbat) for providing the said input voltage to the voltage regulator, wherein the regulator coupling comprises
a first and second operating mode,
means for providing the said input voltage with the first voltage value in the said first operating mode, and
means for providing the said input voltage with the second voltage value in the said second operating mode, in which the second voltage value is smaller than the said first voltage value.
2. A regulator coupling according to claim 1, wherein the said voltage regulator is arranged to provide an equal voltage to the output as the said output voltage (Vout) in the said first and second operating mode.
3. A regulator coupling according to claim 1, wherein it comprises regulator means for forming the said second voltage value by regulating from the said first voltage value.
4. A regulator coupling according to claim 3, wherein the said regulator means comprise
a return coupling for monitoring the voltage level of the input voltage (Vs),
a control device, switches and the said control device further comprises an output for controlling the switches, an input for receiving the control signal and an input for receiving the return coupled voltage through the said return coupling, and switches are arranged to form a pulse-form voltage from the used voltage supply’s voltage (Vbat), and
a coil and capacitor for filtering the formed pulse-form voltage as the voltage regulator’s input voltage (Vs).
5. A regulator coupling according to claims 1-4, wherein it is used in a mobile communications device and that the said first operating mode is the idle mode of the mobile communications device and the said second operating mode is the call mode of the mobile communications device.
6. A method for using a dissipation-type voltage regulator, in which an input voltage (Vs) is formed to the voltage regulator and an output voltage (Vout) is gained from voltage regulator, wherein the method
uses the voltage regulator in a first and second operating mode,
a first voltage value is formed for the said input voltage (Vs) in the first operating mode, and
a second voltage value is formed for the said input voltage (Vs) in the second operating mode, in which the second voltage value is smaller than the said first voltage value.
7. A method according to claim 6, wherein the said first and second operating mode provide an equal output voltage as the said voltage regulator’s output voltage (Vout).
8. A method according to claim 6, wherein when the load current flowing through the said voltage regulator exceeds a predetermined limit value, the process moves from the first operating mode to the second operating mode.
9. A method according to claim 6, wherein when the load current flowing through the said voltage regulator decreases below a predetermined limit value, the process moves from the second operating mode to the first operating mode.
10. A method according to claim 6, wherein the said first voltage value in the said first operating mode is formed from the voltage of the voltage supply (Vbat) to form the said voltage regulator’s output voltage (Vout).
11. A method according to claim 6, wherein the said second voltage value in the said second operating mode is regulated from the said first voltage value to form the output voltage of the voltage regulator (Vout).
12. A method according to claim 11, wherein in the said second operating mode
a pulse voltage is formed from the voltage supply’s voltage (Vbat),
the said pulse voltage is filtered as the second voltage value of the said voltage regulator’s input voltage (Vs).
13. An electronic device comprising
at least one dissipation-type voltage regulator, which has an input for receiving input voltage (Vs) and an output for providing output voltage (Vout), and
means for providing the said input voltage to the voltage regulator, wherein the device comprises
a first and second operating mode,
means for providing the said input voltage with the first voltage value in the said first operating mode, and
means for providing the said input voltage with the second voltage value in the said second operating mode, in which the second voltage value is smaller than the said first voltage value.
14. A device according to claim 13, wherein the said device is a mobile communications device.
15. A device according to claim 13, wherein the said voltage regulator is a linear regulator.

1461150292-76e600c1-0d09-4818-8e4a-a9104ef2a2fc

1.-30. (canceled)
31. An apparatus for magnetically stirring a metallic melt, comprising:
a vessel for containing an amount of the metallic melt; and
means for generating a magnetic field having a rotational component and an axial component to stir the volume of flowable material within said vessel.

The claims below are in addition to those above.
All refrences to claim(s) which appear below refer to the numbering after this setence.

1. A plant of soybean variety 01045930, wherein a sample of seed of said variety has been deposited under ATCC Accession No. ______.
2. A plant part of the plant of claim 1, wherein the plant part comprises at least one cell of said plant.
3. The plant part of claim 2, further defined as pollen, a meristem, a cell, or an ovule.
4. A seed of soybean variety 01045930, wherein a sample of seed of said variety has been deposited under ATCC Accession No. ______.
5. A method of producing soybean seed, wherein the method comprises crossing the plant of claim 1 with itself or a second soybean plant.
6. The method of claim 5, wherein the method is further defined as comprising crossing the plant of soybean variety 01045930 with a second, distinct soybean plant to produce an F1 hybrid soybean seed.
7. An F1 hybrid soybean seed produced by the method of claim 6.
8. An F1 hybrid soybean plant produced by growing the seed of claim 7.
9. A composition comprising the seed of claim 4 comprised in plant seed growth media, wherein a sample of seed of said variety has been deposited under ATCC Accession No. ______.
10. The composition of claim 9, wherein the growth media is soil or a synthetic cultivation medium.
11. A plant produced by introducing a single locus conversion into soybean variety 01045930, or a selfed progeny thereof comprising the single locus conversion, wherein the single locus conversion was introduced into soybean variety 01045930 by backcrossing or genetic transformation and wherein a sample of seed of soybean variety 01045930 has been deposited under ATCC Accession No. ______.
12. The plant of claim 11, wherein the single locus conversion comprises a transgene.
13. A seed that produces the plant of claim 11.
14. The seed of claim 13, wherein the single locus confers a trait selected from the group consisting of male sterility, herbicide tolerance, insect resistance, pest resistance, disease resistance, modified fatty acid metabolism, abiotic stress resistance, altered seed amino acid composition, site-specific genetic recombination, and modified carbohydrate metabolism.
15. The seed of claim 13, wherein the single locus confers tolerance to an herbicide selected from the group consisting of glyphosate, sulfonylurea, imidazalinone, dicamba, glufosinate, phenoxy propionic acid, cyclohexanedione, triazine, benzonitrile, PPO-inhibitor herbicides, and bromoxynil.
16. The seed of claim 13, wherein the single locus conversion comprises a transgene.
17. The method of claim 6, wherein the method further comprises:
(a) crossing a plant grown from said F1 hybrid soybean seed with itself or a different soybean plant to produce a seed of a progeny plant of a subsequent generation;
(b) growing a progeny plant of a subsequent generation from said seed of a progeny plant of a subsequent generation and crossing the progeny plant of a subsequent generation with itself or a second plant to produce a progeny plant of a further subsequent generation; and
(c) repeating steps (a) and (b) using said progeny plant of a further subsequent generation from step (b) in place of the plant grown from said F1 hybrid soybean seed in step (a), wherein steps (a) and (b) are repeated with sufficient inbreeding to produce an inbred soybean plant derived from the soybean variety 01045930.
18. The method of claim 17, comprising crossing said inbred soybean plant derived from the soybean variety 01045930 with a plant of a different genotype to produce a seed of a hybrid soybean plant derived from the soybean variety 01045930.
19. A method of producing a commodity plant product comprising collecting the commodity plant product from the plant of claim 1.
20. The method of claim 19, wherein the commodity plant product is protein concentrate, protein isolate, grain, soybean hulls, meal, flour, or oil.
21. A soybean commodity plant product produced by the method of claim 20, wherein the commodity plant product comprises at least one cell of soybean variety 01045930.